Document 318947
Advanced Biology Laboratory Manual 2010-‐2011 Name:_______________________ 1 2 Biology Table of Contents CB# Suggested Unit Dissolved Oxygen Probe Calibration Dissolved Oxygen Primary Productivity Animal Behavior Transpiration Circulatory: Blood Pressure Evolution: Hardy Weinberg Enzymes Osmosis and Diffusion 12A 12B 11 9 10 8 2 1 Ecology Ecology Animals Plants Circulation Evolution Biochemistry Cells Mitosis Meiosis Cellular Respiration 3A 3B 5 Plant Pigments 4A Photosynthesis 4B Electrophoresis Transformation Chi Square Pre-Lab Corn and Genetics Extra Graph Paper 6B 6A 7 7 Cells Cells Cell Energetics Cell Energetics Cell Energetics Biotechnology Biotechnology Genetics Genetics Page Numbers 5-7 & 15-17 9-14 19-24 25-29 31-38 39-43 45-54 55-63 65-86 89-95 97-101 103-108 109-112 113-122 123-133 135-139 141-142 143-147 149-152 4 PRE-LAB DISSOLVED OXYGEN PROBE PROCEDURE **Important: Prior to each use, the Dissolved Oxygen Probe must warm up for a period of 15–20 minutes as described below. If the probe is not warmed up properly, inaccurate readings will result. Perform the following steps to prepare the Dissolved Oxygen Probe.** You have two bottles of fluid in your dissolved oxygen probe box: DO electrode filling solution (used to lubricate the membrane inside the probe) AND Sodium Sulfite Calibration Solution used to calibrate the sensor. 1. Prepare the Dissolved Oxygen Probe for use. a. b. c. d. e. Remove the protective cap. Unscrew the membrane cap from the tip of the probe. Using a pipet, fill the membrane cap with 1 mL of DO Electrode Filling Solution. Carefully thread the membrane cap back onto the electrode. Place the probe into a 250 mL beaker containing distilled water. Figure 1 2. Connect the Dissolved Oxygen Probe to CH 1 and the Temperature Probe to CH 2 on LabQuest. Choose New from the File menu. If you have older sensors that do not auto-ID, manually set up the sensors. 3. It is necessary to warm up the Dissolved Oxygen Probe for 5–10 minutes before taking readings. With the probe still in the distilled water beaker, wait while the probe warms up. The probe must stay connected at all times to keep it warmed up. 4. On the Meter screen, tap Mode. Change the mode to Selected Events. Select OK. 5. Calibrate the Dissolved Oxygen Probe. If your instructor directs you to use the calibration stored in the experiment file, continue directly to the Procedure. • If your instructor directs you to manually enter the calibration values, choose Calibrate►Dissolved Oxygen from the Sensors menu. Tap Equation. Enter the values for the Slope and the Intercept. Select Apply. Select OK and continue directly to the Procedure. • If your instructor directs you to perform a new calibration, use the procedure at the end of this lab. • 5 CALIBRATION PROCEDURE 1. Perform the calibration. a. Choose Calibrate►Dissolved Oxygen from the Sensors menu. b. Select Calibrate Now. Zero-Oxygen Calibration Point c. Remove the probe from the water bath and place the tip of the probe into the Sodium Sulfite Calibration Solution. Important: No air bubbles can be trapped below the tip of the probe or the probe will sense an inaccurate dissolved oxygen level. If the voltage does not rapidly decrease, tap the side of the bottle with the probe to dislodge the bubble. The readings should be in the 0.2 to 0.6 V range. d. Enter 0 as the known value in mg/L for Reading 1. e. When the voltage stabilizes (~1 minute), tap Keep. Figure 3 Saturated DO Calibration Point f. Rinse the probe with distilled water and gently blot dry. g. Unscrew the lid of the calibration bottle provided with the probe. Slide the lid and the grommet about 1/2 inch onto the probe body. h. i. j. k. l. Figure 4 Add water to the bottle to a depth of about 1/4 inch and screw the bottle into the cap, as shown. Important: Do not touch the membrane or get it wet during this step. In the Reading 2 field, enter the correct saturated dissolved-oxygen value (in mg/L) from Table 3 (for example, 8.66) using the current barometric pressure and air temperature values. If you do not have the current air pressure, use Table 4 to estimate the air pressure at your altitude. Keep the probe in this position for about a minute. The readings should be above 2.0 V. When the voltage reading stabilizes, tap Keep. Return the Dissolved Oxygen Probe to the distilled water beaker. Select OK 6 CALIBRATION TABLES 0°C 1°C 2°C 3°C 4°C 5°C 6°C 7°C 8°C 9°C 10° C 11° C 12° C 13° C 14° C 15° C 16° C 17° C 18° C 19° C 20° C 21° C 22° C 23° C 24° C 25° C 26° C 27° C 28° C 29° C 30° C 770 mm 14.7 14.36 14.08 13.61 13.35 12.91 12.67 12.36 12.05 11.75 11.57 11.20 10.94 10.78 10.54 10.21 10.09 9.867 9.67 9.47 9.29 9.11 8.94 8.78 8.62 8.47 8.32 8.17 8.04 7.90 7.77 760 mm 14.5 14.17 13.89 13.42 13.17 12.83 12.41 12.19 11.99 11.60 11.32 11.05 10.89 10.64 10.30 10.17 9.945 9.74 9.54 9.35 9.17 9.00 8.83 8.66 8.51 8.36 8.21 8.07 7.93 7.80 7.67 Table 3: 100% Dissolved Oxygen Capacity (mg/L) 750 740 730 720 710 700 690 680 mm 14.1 mm 13.9 mm 13.8 mm 13.6 mm 13.4 mm 13.2 mm 13.0 mm 14.3 14.08 13.89 13.69 13.40 13.21 13.02 12.83 12.74 13.60 13.42 13.23 13.14 12.96 12.77 12.58 12.30 13.24 13.16 12.98 12.70 12.52 12.43 12.25 12.07 12.99 12.72 12.64 12.46 12.29 12.11 11.93 11.75 12.66 12.49 12.31 12.14 11.97 11.80 11.62 11.45 12.34 12.17 12.00 11.83 11.66 11.50 11.33 11.16 12.03 11.86 11.70 11.53 11.37 11.21 11.04 10.98 11.73 11.57 11.41 11.25 11.19 10.93 10.87 10.61 11.44 11.38 11.13 11.07 10.81 10.76 10.50 10.35 11.26 11.01 10.96 10.71 10.65 10.40 10.35 10.19 10.90 10.85 10.60 10.55 10.30 10.25 10.00 9.925 10.74 10.50 10.45 10.21 10.16 9.991 9.847 9.70 10.40 10.36 10.11 10.07 9.903 9.77 9.63 9.49 10.26 10.12 9.968 9.834 9.69 9.55 9.42 9.28 10.04 9.880 9.75 9.62 9.48 9.35 9.22 9.08 9.812 9.68 9.55 9.42 9.29 9.15 9.02 8.89 9.61 9.48 9.35 9.22 9.10 8.97 8.84 8.71 9.41 9.29 9.16 9.04 8.91 8.79 8.66 8.54 9.23 9.11 8.98 8.86 8.74 8.61 8.49 8.37 9.05 8.93 8.81 8.69 8.57 8.45 8.33 8.20 8.88 8.76 8.64 8.52 8.40 8.28 8.17 8.05 8.71 8.59 8.48 8.36 8.25 8.13 8.01 7.90 8.55 8.44 8.32 8.21 8.09 7.98 7.87 7.75 8.40 8.28 8.17 8.06 7.95 7.84 7.72 7.61 8.25 8.14 8.03 7.92 7.81 7.70 7.59 7.48 8.10 7.99 7.89 7.78 7.67 7.56 7.45 7.35 7.96 7.86 7.75 7.64 7.54 7.43 7.33 7.22 7.83 7.72 7.62 7.51 7.41 7.30 7.20 7.10 7.69 7.59 7.49 7.39 7.28 7.18 7.08 6.98 7.57 7.47 7.36 7.26 7.16 7.06 6.96 6.86 670 mm 12.8 12.54 12.11 11.89 11.58 11.28 11.09 10.71 10.45 10.29 10.04 9.780 9.56 9.35 9.14 8.95 8.76 8.58 8.41 8.24 8.08 7.93 7.78 7.64 7.50 7.37 7.24 7.11 6.99 6.87 6.76 660 mm 12.6 12.35 12.02 11.71 11.40 11.10 10.82 10.55 10.39 10.03 9.869 9.63 9.41 9.21 9.01 8.82 8.63 8.45 8.28 8.12 7.96 7.81 7.67 7.52 7.39 7.26 7.13 7.01 6.89 6.77 6.66 Table 4: Approximate Barometric Pressure at Different Elevations Elevation Pressure Elevation Pressure Elevation Pressure (mm Hg) (mm Hg) (mm Hg) (m) (m) (m) 0 760 800 693 1600 628 100 748 900 685 1700 620 200 741 1000 676 1800 612 300 733 1100 669 1900 604 400 725 1200 661 2000 596 500 717 1300 652 2100 588 600 709 1400 643 2200 580 700 701 1500 636 2300 571 7 8 Dissolved Oxygen and Water Temperature Although water is composed of oxygen and hydrogen atoms, biological life in water depends upon another form of oxygen-dissolved oxygen (or oxygen saturation). Oxygen is used by organisms in aerobic respiration where energy is released by the combustion of sugar in the mitochondria. This form of oxygen can fit into the spaces between water molecules and is available to aquatic organisms. Water obtains oxygen from two major sources: the atmosphere and from aquatic plants. Aquatic animals depend upon the oxygen dissolved in water. Without this oxygen, they would suffocate. Fish have different tolerances for temperature and dissolved oxygen. The ecological quality of the water depends largely upon the amount of oxygen the water can hold. Table 1 indicates the normal tolerance of selected animals to temperature and oxygen levels. By observing the aquatic animal populations in a stream, The quality of the water can be assessed with fair accuracy. Table 1: Temperature and Dissolved Oxygen Ranges for Fish Animal Trout Smallmouth bass Caddisfly larvae Mayfly larvae Stonefly larvae Catfish Carp Mosquito Water boatmen Temperature range (°C) 5–20 5–28 10–25 10–25 10–25 20–25 10–25 10–25 10–25 Minimum dissolved oxygen (mg/L) 6.5 6.5 4.0 4.0 4.0 2.5 2.0 1.0 2.0 OBJECTIVES: In this experiment, you will • Study the effect of temperature on the amount of dissolved oxygen in water. • Predict the effect of water temperature on aquatic life. MATERIALS: LabQuest Temperature Probe Vernier Dissolved Oxygen Probe D.O. calibration bottle and cap Adapted from Advanced Biology with Vernier two 250 mL beakers hot and cold water 1 gallon plastic milk container Styrofoam cup 9 PROCEDURE 1. Start data collection. 2. Obtain two 250 mL beakers. Fill one beaker with ice and water. Fill the second beaker with warm water about 40–50°C. 3. Place approximately 100 mL of cold water and a couple small pieces of ice, from the beaker filled with ice, into a clean plastic one-gallon milk container. Seal the container and vigorously shake the water for a period of 2 minutes. This will allow the air inside the container to dissolve into the water sample. Pour the water into a clean Styrofoam cup. 4. Place the Temperature Probe in the Styrofoam cup as shown in Figure 2. Place the shaft of the Dissolved Oxygen Probe into the water and gently stir. Avoid hitting the edge of the cup with the probe. 5. Monitor the dissolved oxygen readings displayed on the screen. Give the dissolved oxygen readings ample time to stabilize (90–120 seconds). At colder temperatures the probe will require a greater amount of time to output stable readings. When the readings have stabilized, tap Keep. 6. Place the Dissolved Oxygen Probe back into the distilled water beaker. Figure 2 7. Pour the water from the Styrofoam cup back into the milk container. Seal the container and shake the water vigorously for 1 minute. Pour the water back into the Styrofoam cup. 8. Repeat Steps 4–7 until the water sample reaches room temperature. 9. When room temperature has been reached, begin adding about 25 mL of very warm water (40– 50°C) prior to shaking the water sample. This will allow you to take warmer water readings. Repeat Steps 4–7 until the water sample reaches 35°C. 10. When all samples have been taken, stop data collection. 11. Create a single graph of dissolved oxygen vs. temperature. a. Choose Show Graph ►Graph 1 from the Graph menu. b. Tap the x-axis label and select Temperature. c. To examine the data pairs on the displayed graph, tap any data point. As you tap each data point, the dissolved oxygen and temperature values are displayed to the right of the graph. d. Record the data values in Table 2. 12. Use the graph of dissolved oxygen concentration vs. temperature to help you answer the questions below. Adapted from Advanced Biology with Vernier 10 DATA TABLE 2 Temperature (°C) Dissolved oxygen (mg/L) QUESTIONS 1. At what temperature was the dissolved oxygen concentration the highest? Lowest? 2. Does your data indicate how the amount of dissolved oxygen in the water is affected by the temperature of water? Explain. Adapted from Advanced Biology with Vernier 11 3. If you analyzed the invertebrates in a stream and found an abundant supply of caddisflies, mayflies, dragonfly larvae, and trout, what minimum concentration of dissolved oxygen would be present in the stream? What maximum temperature would you expect the stream to sustain? 4. Mosquito larvae can tolerate extremely low dissolved oxygen concentrations, yet cannot survive at temperatures above approximately 25°C. How might you account for dissolved oxygen concentrations of such a low value at a temperature of 25°C? Explain. 5. Why might trout be found in pools of water shaded by trees and shrubs more commonly than in water where the trees have been cleared? Adapted from Advanced Biology with Vernier 12 13 14 PRE-LAB DISSOLVED OXYGEN PROBE PROCEDURE **Important: Prior to each use, the Dissolved Oxygen Probe must warm up for a period of 15–20 minutes as described below. If the probe is not warmed up properly, inaccurate readings will result. Perform the following steps to prepare the Dissolved Oxygen Probe.** You have two bottles of fluid in your dissolved oxygen probe box: DO electrode filling solution (used to lubricate the membrane inside the probe) AND Sodium Sulfite Calibration Solution used to calibrate the sensor. 1. Prepare the Dissolved Oxygen Probe for use. a. b. c. d. e. Remove the protective cap. Unscrew the membrane cap from the tip of the probe. Using a pipet, fill the membrane cap with 1 mL of DO Electrode Filling Solution. Carefully thread the membrane cap back onto the electrode. Place the probe into a 250 mL beaker containing distilled water. Figure 1 2. Connect the Dissolved Oxygen Probe to CH 1 and the Temperature Probe to CH 2 on LabQuest. Choose New from the File menu. If you have older sensors that do not auto-ID, manually set up the sensors. 3. It is necessary to warm up the Dissolved Oxygen Probe for 5–10 minutes before taking readings. With the probe still in the distilled water beaker, wait while the probe warms up. The probe must stay connected at all times to keep it warmed up. 4. On the Meter screen, tap Mode. Change the mode to Selected Events. Select OK. 5. Calibrate the Dissolved Oxygen Probe. If your instructor directs you to use the calibration stored in the experiment file, continue directly to the Procedure. • If your instructor directs you to manually enter the calibration values, choose Calibrate►Dissolved Oxygen from the Sensors menu. Tap Equation. Enter the values for the Slope and the Intercept. Select Apply. Select OK and continue directly to the Procedure. • If your instructor directs you to perform a new calibration, use the procedure at the end of this lab. • 15 CALIBRATION PROCEDURE 1. Perform the calibration. a. Choose Calibrate►Dissolved Oxygen from the Sensors menu. b. Select Calibrate Now. Zero-Oxygen Calibration Point c. Remove the probe from the water bath and place the tip of the probe into the Sodium Sulfite Calibration Solution. Important: No air bubbles can be trapped below the tip of the probe or the probe will sense an inaccurate dissolved oxygen level. If the voltage does not rapidly decrease, tap the side of the bottle with the probe to dislodge the bubble. The readings should be in the 0.2 to 0.6 V range. d. Enter 0 as the known value in mg/L for Reading 1. e. When the voltage stabilizes (~1 minute), tap Keep. Figure 3 Saturated DO Calibration Point f. Rinse the probe with distilled water and gently blot dry. g. Unscrew the lid of the calibration bottle provided with the probe. Slide the lid and the grommet about 1/2 inch onto the probe body. h. i. j. k. l. Figure 4 Add water to the bottle to a depth of about 1/4 inch and screw the bottle into the cap, as shown. Important: Do not touch the membrane or get it wet during this step. In the Reading 2 field, enter the correct saturated dissolved-oxygen value (in mg/L) from Table 3 (for example, 8.66) using the current barometric pressure and air temperature values. If you do not have the current air pressure, use Table 4 to estimate the air pressure at your altitude. Keep the probe in this position for about a minute. The readings should be above 2.0 V. When the voltage reading stabilizes, tap Keep. Return the Dissolved Oxygen Probe to the distilled water beaker. Select OK 16 CALIBRATION TABLES 0°C 1°C 2°C 3°C 4°C 5°C 6°C 7°C 8°C 9°C 10° C 11° C 12° C 13° C 14° C 15° C 16° C 17° C 18° C 19° C 20° C 21° C 22° C 23° C 24° C 25° C 26° C 27° C 28° C 29° C 30° C 770 mm 14.7 14.36 14.08 13.61 13.35 12.91 12.67 12.36 12.05 11.75 11.57 11.20 10.94 10.78 10.54 10.21 10.09 9.867 9.67 9.47 9.29 9.11 8.94 8.78 8.62 8.47 8.32 8.17 8.04 7.90 7.77 760 mm 14.5 14.17 13.89 13.42 13.17 12.83 12.41 12.19 11.99 11.60 11.32 11.05 10.89 10.64 10.30 10.17 9.945 9.74 9.54 9.35 9.17 9.00 8.83 8.66 8.51 8.36 8.21 8.07 7.93 7.80 7.67 Table 3: 100% Dissolved Oxygen Capacity (mg/L) 750 740 730 720 710 700 690 680 mm 14.1 mm 13.9 mm 13.8 mm 13.6 mm 13.4 mm 13.2 mm 13.0 mm 14.3 14.08 13.89 13.69 13.40 13.21 13.02 12.83 12.74 13.60 13.42 13.23 13.14 12.96 12.77 12.58 12.30 13.24 13.16 12.98 12.70 12.52 12.43 12.25 12.07 12.99 12.72 12.64 12.46 12.29 12.11 11.93 11.75 12.66 12.49 12.31 12.14 11.97 11.80 11.62 11.45 12.34 12.17 12.00 11.83 11.66 11.50 11.33 11.16 12.03 11.86 11.70 11.53 11.37 11.21 11.04 10.98 11.73 11.57 11.41 11.25 11.19 10.93 10.87 10.61 11.44 11.38 11.13 11.07 10.81 10.76 10.50 10.35 11.26 11.01 10.96 10.71 10.65 10.40 10.35 10.19 10.90 10.85 10.60 10.55 10.30 10.25 10.00 9.925 10.74 10.50 10.45 10.21 10.16 9.991 9.847 9.70 10.40 10.36 10.11 10.07 9.903 9.77 9.63 9.49 10.26 10.12 9.968 9.834 9.69 9.55 9.42 9.28 10.04 9.880 9.75 9.62 9.48 9.35 9.22 9.08 9.812 9.68 9.55 9.42 9.29 9.15 9.02 8.89 9.61 9.48 9.35 9.22 9.10 8.97 8.84 8.71 9.41 9.29 9.16 9.04 8.91 8.79 8.66 8.54 9.23 9.11 8.98 8.86 8.74 8.61 8.49 8.37 9.05 8.93 8.81 8.69 8.57 8.45 8.33 8.20 8.88 8.76 8.64 8.52 8.40 8.28 8.17 8.05 8.71 8.59 8.48 8.36 8.25 8.13 8.01 7.90 8.55 8.44 8.32 8.21 8.09 7.98 7.87 7.75 8.40 8.28 8.17 8.06 7.95 7.84 7.72 7.61 8.25 8.14 8.03 7.92 7.81 7.70 7.59 7.48 8.10 7.99 7.89 7.78 7.67 7.56 7.45 7.35 7.96 7.86 7.75 7.64 7.54 7.43 7.33 7.22 7.83 7.72 7.62 7.51 7.41 7.30 7.20 7.10 7.69 7.59 7.49 7.39 7.28 7.18 7.08 6.98 7.57 7.47 7.36 7.26 7.16 7.06 6.96 6.86 670 mm 12.8 12.54 12.11 11.89 11.58 11.28 11.09 10.71 10.45 10.29 10.04 9.780 9.56 9.35 9.14 8.95 8.76 8.58 8.41 8.24 8.08 7.93 7.78 7.64 7.50 7.37 7.24 7.11 6.99 6.87 6.76 660 mm 12.6 12.35 12.02 11.71 11.40 11.10 10.82 10.55 10.39 10.03 9.869 9.63 9.41 9.21 9.01 8.82 8.63 8.45 8.28 8.12 7.96 7.81 7.67 7.52 7.39 7.26 7.13 7.01 6.89 6.77 6.66 Table 4: Approximate Barometric Pressure at Different Elevations Elevation Pressure Elevation Pressure Elevation Pressure (mm Hg) (mm Hg) (mm Hg) (m) (m) (m) 0 760 800 693 1600 628 100 748 900 685 1700 620 200 741 1000 676 1800 612 300 733 1100 669 1900 604 400 725 1200 661 2000 596 500 717 1300 652 2100 588 600 709 1400 643 2200 580 700 701 1500 636 2300 571 17 18 Primary Productivity Oxygen is vital to life. In the atmosphere, oxygen comprises over 20% of the available gases. In aquatic ecosystems, however, oxygen is scarce. To be useful to aquatic organisms, oxygen must be in the form of molecular oxygen, O2. The concentration of oxygen in water can be affected by many physical and biological factors. Respiration by plants and animals reduces oxygen concentrations, while the photosynthetic activity of plants increases it. In photosynthesis, carbon is assimilated into the biosphere and oxygen is made available, as follows: 6 H2O + 6 CO2(g) + energy ® C6H12O6 + 6O2(g) The rate of assimilation of carbon in water depends on the type and quantity of plants within the water. Primary productivity is the measure of this rate of carbon assimilation. As the above equation indicates, the production of oxygen can be used to monitor the primary productivity of an aquatic ecosystem. A measure of oxygen production over time provides a means of calculating the amount of carbon that has been bound in organic compounds during that period of time. Primary productivity can also be measured by determining the rate of carbon dioxide utilization or the rate of formation of organic compounds. One method of measuring the production of oxygen is the light and dark bottle method. In this method, a sample of water is placed into two bottles. One bottle is stored in the dark and the other in a lighted area. Only respiration can occur in the bottle stored in the dark. The decrease in dissolved oxygen (DO) in the dark bottle over time is a measure of the rate of respiration. Both photosynthesis and respiration can occur in the bottle exposed to light, however. The difference between the amount of oxygen produced through photosynthesis and that consumed through aerobic respiration is the net productivity. The difference in dissolved oxygen over time between the bottles stored in the light and in the dark is a measure of the total amount of oxygen produced by photosynthesis. The total amount of oxygen produced is called the gross productivity. The measurement of the DO concentration of a body of water is often used to determine whether the biological activities requiring oxygen are occurring and is an important indicator of pollution. OBJECTIVES In this experiment, you will • • Measure the rate of respiration in an aquatic environment using a Dissolved Oxygen Probe. Determine the net and gross productivity in an aquatic environment. MATERIALS LabQuest Vernier Dissolved Oxygen Probe 1.5L of pond or lake water per group Deep buckets Distilled water 250 mL beaker Aquatic Bottles 19 PROCEDURE Day 1 1. Obtain a set of aquatic bottles. 2. Fill each of the containers with the water sample from the same bucket. There must be NO air bubbles in each container. Be sure no air is in the container. 3. Use a marker to label the cap and the bottom of each container. 4. Mix the contents of each container. Be sure that there are no air bubbles present in any of the containers. Fill with more sample water if necessary. 5. Remove the Dissolved Oxygen Probe from the beaker. Place the probe into a container, so that it is submerged half the depth of the water. Gently and continuously move the probe up and down a distance of about 1 cm in the container. This allows water to move past the probe’s tip (if you have a Vernier microstirrer, you can attach it to the bottom of the probe and place on a magnetic stirrer). Note: Do not agitate the water, or oxygen from the atmosphere will mix into the water and cause erroneous readings. 6. After 60 seconds, or when the dissolved oxygen reading stabilizes, record the reading in Table 2. Replace the displaced water in the container removing all air bubbles and cap. 7. Rinse the Dissolved Oxygen Probe with distilled water and place it back in the distilled water beaker. The probe should remain in the beaker overnight, so that measurements can be made the following day. 8. Place the containers in the aquatic chamber and place near the light source, as directed by your instructor. Day 2 1. Repeat the pre-lab procedure to polarize the Dissolved Oxygen Probe and manually enter the calibration values. 2. Place the probe into the 100% light container. Gently and continuously move the probe up and down a distance of about 1 cm in the container. After 60 seconds, or when the dissolved oxygen reading stabilizes, record the reading in Table 2. 3. Repeat Step #2 (Day 2) for the remaining containers. 4. Clean your containers as directed by your instructor. Rinse the Dissolved Oxygen Probe with distilled water and place it back in the distilled water beaker. 20 DATA Table 2 Test tube % Light 1 Initial 2 100% 3 75% 4 50% 5 25% 6 0% DO (mg/L) PROCESSING THE DATA 1. Determine the number of hours that have passed since the onset of this experiment. Subtract the DO value in test tube 1 (the initial DO value) from that of test tube 7 (the dark test tube’s DO value). Divide the DO value by the time in hours. Record the resulting value as the respiration rate in Table 3. Respiration rate = (dark DO – initial DO) / time 2. Determine the gross productivity in each test tube. To do this, subtract the DO in test tube 7 (the dark test tube’s DO value) from that of test tubes 2–6 (the light test tubes’ DO value). Divide each DO value by the length of the experiment in hours. Record each resulting value as the gross productivity in Table 4. Gross productivity = (DO of test tube – dark DO) / time 3. Determine the net productivity in each test tube. To do this, subtract the DO in test tubes 2–6 (the light test tube’s DO value) from that of test tube 1 (the initial DO value). Divide the result by the length of the experiment in hours. Record each resulting value as the net productivity in Table 4. Net Productivity = (DO of test tube – initial DO) / time Table 3 Respiration (mg O2/L/hr) 21 Table 4 Test Tube % Light 2 100% 3 65% 4 25% 5 10% 6 2% Gross productivity (mg/L/hr) Net productivity (mg/L/hr) 4. Prepare a graph of gross productivity and net productivity as a function of light intensity. Graph both types of productivity on the same piece of graph paper. QUESTIONS 1. Is there evidence that photosynthetic activity added oxygen to the water? Explain. 2. Is there evidence that aerobic respiration occurred in the water? If so, what kind of organisms might be responsible for this (autotrophs, heterotrophs)? Explain. 3. What effect did light have on the primary productivity? Explain. 4. Refer to your graph of productivity and light intensity. At what light intensity do you expect there to be no net productivity? no gross productivity? 22 5. How would turbidity affect the primary productivity of a pond? EXTENSIONS 1. Determine the effects of nitrogen and phosphates on primary productivity. Why would the presence of phosphates and nitrogen, in the form of nitrates and ammonium ions, be important to an aquatic ecosystem during the spring season? How do they accumulate in the watershed? What is eutrophication? 2. Measure the dissolved oxygen of a pond at different temperatures. What is the effect of temperature on the primary productivity of a pond? 3. Calculate the amount of carbon that was fixed in each of the tubes. Use the following conversion factors to do the calculations. mg O2/L X 0.698 = mL O2/L mL O2/L X .536 = mg carbon fixed/L 23 24 Animal Behavior: Pillbugs Biotic and abiotic factors are limiting factors in an ecosystem because they can regulate the maximum size of the population based on their availability. Organisms are able to exist in a relatively narrow range of environmental conditions that favor them and their offspring. Since most organisms cannot change the nature of their environment, they must position themselves in an environment with favorable conditions Many organisms exhibit a tactic response to these environmental factors. Tactic responses may be positive, toward a favorable environment, or negative, away from an unfavorable environment. These static responses enable an organism to locate prey, avoid predators, seek food or shelter, or avoid a negative environment. There are two types of behavior movements: taxis and kinesis. Taxis is a deliberate movement toward or away from a stimulus. Kinesis, on the other hand, is a random movement that is not oriented toward or away from a stimulus. A movement classified as taxis defines the physiological needs of the organism, its evolutionary history, its’ nervous system, etc. Objectives: • Design an experiment to determine how pillbugs respond to environmental changes. • Observe behavior characteristics of pillbugs. Materials pillbugs (10 per group) Masking tape 1% hydrochloric acid solution Magnifier or stereoscope 2% potassium hydroxide solution filter papers (2 per group) Animal behavior tray Camel’s hair paint brush Procedure I. General Observations 1. Place 10 pillbugs in the behavior tray and carefully observe them for at least 10 minutes. 2. In Table 1, document any behaviors you see. Remember to document every behavior in chronological order. Note: Do not disturb the pillbugs during your observation. 3. In Table 2, sketch a pillbug and label its structures. Adapted from Advanced Biology with Vernier 25 Table 1: Pillbug Observations Table 2: Pillbug Anatomy Adapted from Advanced Biology with Vernier 26 II. Kinesis 1. Label one chamber of the tray A and one chamber B. 2. Place 5 pillbugs in each chamber of the tray 3. For 10 minutes, count the number of pillbugs in each tray each minute and record your data in table 3. 4. Calculate the average number of pillbugs in each chamber at the end of the 10-‐minute period. 5. Collect class data for the average number of pillbugs in each chamber. Table 3: Pillbug Kinesis Time (min) Side A (# pillbugs) Side B (# pillbugs) 0 1 2 3 4 5 6 7 8 9 10 Group Avg. Class Avg. III. Experiment 1. Your instructor will assign you a variable to use as your environmental factor that will elicit either: chemotaxis, hydrotaxis, or Phototaxis. a. Chemotaxis-‐ the orientation of an organism when exposed to a chemical b. Hydrotaxis-‐ the orientation of an organism when exposed to water. c. Phototaxis-‐ the orientation of an organism when exposed to light. 2. Formulate a hypothesis about how your pillbugs may react to the environmental variable that you are assigned. 3. Design an experiment to test your variable. 4. Once you have designed your experiment, check with your instructor before preceding. 5. Graph your results from part II and part III on the same graph. Adapted from Advanced Biology with Vernier 27 Hypothesis:___________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ Experimental Design: _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ _________________________________________________________________________________________________ Table 4: Condition Tested: ____________________________________________ Time (min) Side A (# pillbugs) Side B (# pillbugs) 0 1 2 3 4 5 6 7 8 9 10 Group Avg. Adapted from Advanced Biology with Vernier 28 29 30 Whole Plant Transpiration Background Information The amount of water needed daily by plants for the growth and maintenance of tissues is small in comparison to the amount that is lost through the process of transpiration (evaporation of water from the stomata of leaves) and guttation (loss of liquids from the ends of vascular tissues at the margins of leaves). If this water is not replaced, the plant will wilt and may die. Water transport from the roots to the leaves occurs in the xylem and is governed by differences in water potential (the potential energy of water molecules). These differences account for water movement from high to low water potential, working cell to cell over long distances in the plant. Gravity, pressure, and solute concentration all contribute to water potential and water always moves from an area of high water potential to an area of low water potential. The movement itself is facilitated by osmosis, root pressure, and adhesion and cohesion of water molecules. The Overall Process Minerals actively transported into the root accumulate in the xylem, increase solute concentration and decrease water potential. Water moves in by osmosis. As water enters the xylem, it forces fluid up the xylem due to hydrostatic root pressure. But this pressure can only move fluid a short distance. The most significant force moving the water and dissolved minerals in the xylem is upward pull as a result of transpiration, which creates a negative tension. The "pull" on the water from transpiration is increased as a result of cohesion and adhesion of water molecules. The Details Transpiration begins with evaporation of water through the stomates (stomata), small openings in the leaf surface which open into air spaces that surround the mesophyll cells of the leaf. The moist air in these spaces has a higher water potential than the outside air, and water tends to evaporate from the leaf surface. The moisture in the air spaces is replaced by water from the adjacent mesophyll cells, lowering their water potential. Water will then move into the mesophyll cells by osmosis from surrounding cells with the higher water potentials including the xylem. As each water molecule moves into a mesophyll cell, it exerts a pull on the column of water molecules existing in the xylem all the way from the leaves to the roots. This transpirational pull is caused by (1) the cohesion of water molecules to one another due to hydrogen bond formation, (2) by adhesion of water molecules to the walls of the xylem cells which aids in offsetting the downward pull of gravity. The upward transpirational pull on the fluid in the xylem causes a tension (negative pressure) to form in the xylem, pulling the xylem walls inward. The tension also contributes to the lowering of the water potential in the xylem. This decrease in water potential, transmitted all the way from the leaf to the roots, causes water to move inward from the soil, across the cortex of the root, and into the xylem. Evaporation through the open stomates is a major route of water loss in the plant. However, the stomates must open to allow the entry of CO2 used in photosynthesis. Therefore, a balance must be maintained between the gain of CO2 and the loss of water by regulating the opening and closing of stomates on the leaf surface. Many environmental conditions influence the opening and closing of the stomates and also affect the rate of transpiration. Temperature, light intensity, air currents, and humidity are some of these factors. Different plants also vary in the rate of transpiration and in the regulation of stomatal opening. Importance of the Transpiration “Engine” • • • supply photosynthesis (1%-2% of the total) bring minerals from the roots for biosynthesis within the leaf cool the leaf Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 31 OBJECTIVES In this experiment, you will: 1. Observe how transpiration affects and correlates with the overall process of water movement in plants 2. Understand the effects of temperature, humidity, air movement, and light intensity on transpiration through experimentation 3. Understand the overall structure of a leaf (including cells, transportation, tissues) MATERIALS per group: Incandescent lamp Labeling tape and sharpie 4 basil plants~equal size 5 plastic bags and twist ties small fan cup for balance spray bottle balance PROCEDURE 1. Select 4 plants that are about the same size. Remove any blossoms. 2. Water and drain the plants well. Carefully remove the plant from the plastic container by gently squeezing the bottom and lifting the plant. Don’t force the plant out. 3. Wrap the root ball of each plant with a plastic bag. Tie the bag close to the stem with string or twist tie. Label with your group name and experimental treatment. 4. Measure and record the masses (g) of each of the plants. Place them into an appropriate container. 5. Place the plants in different environmental conditions in the room: a. CONTROL -The control is placed out of a draft or excessive heat. b. WIND - 2 feet away from a fan on low (leaves shouldn’t rustle, can cause stomata to close) c. LIGHT- 2 feet away from a floodlight. d. HUMID - The plant covered with bags on top and bottom or plant under an inverted aquarium (heavily mist each day after massing) e. DARK- in a closed cabinet. 6. Measure and record the masses of each plant every day for one week. Calculate the percent mass change each day as compared to initial mass on Day 1. Enter data on a group data Table A. 7. Graph your plants’ daily masses over time. Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 32 Transpiration Lab Data Group Data Table A Day 1 Day 2 Day 3 Day 4 Day 5 Mass Control % change 0* Mass Light % change 0* Mass High Humidity % change 0* Mass Fan (wind) % change 0* Mass Dark % change 0* Class Data Table B (Averages) Type Group 1 Group 2 Group 3 Percent Mass Change Group 4 Group 5 Group 6 Group 7 Group 8 Control Light High Humidity Fan (Wind) Dark Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 33 Average PROCESSING THE DATA 1. Determine the surface area of all the leaves on your plant using the following method: a. b. c. d. Cut one leaf (not stem) off your plant. Estimate the surface area of the leaf in cm2. Find the total leaf surface area by multiplying this by the number of leaves that size on your plant. Repeat steps a-c for smaller or larger leaves and add up the total surface area of your plant’s leaves. e. Record the calculated surface area in Table 1. 2. Calculate the rate of transpiration (grams of water lost per day)/surface area. To do this, divide the rate of transpiration by the surface area for each plant. These rate values can be expressed as g/day/cm2. Record the rate/area in Table 1. 3. Subtract the control (rate/area) value from the experimental value. Record this adjusted rate in the last column of Table 1. 4. Record the adjusted rate for your experimental test on the board to share with the class. Record the class results in Table 2 for each of the environmental conditions tested. If a condition was tested by more than one group, take the average of the values and record in Table 2. 5. Graph the class’ data for Transpiration Rate Table 1: Individual Group Data Test Slope (g/day) Surface area (cm2) Rate/area (g/day/cm2) Adjusted rate (g/day/cm2) Experimental ______________ Control Table 2: Class Data Transpiration Rate Test Adjusted rate (g/day/cm2) Light Humidity Wind Temperature Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 34 PRELAB QUESTIONS 1. What is transpiration? How does transpiration affect the size and shape of guard cells? 2. How does cohesion and adhesion relate to the movement of water by evaporation? 3. What is the independent variable? What is the dependent variable? 4. What are the controlled variables (constants)? 5. Describe and explain the impact of each of the following factors on the rate of transpiration. a. Light Intensity b. Temperature c. Humidity d. Air Movement or Wind e. Soil water 6. Predict which environmental variable has the greatest effect on the rate of transpiration. Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 35 7. The data below were collected using a potometer which measures the volume of water lost during transpiration (mL/m2). Graph the data below and calculate the rates of transpiration for each condition. Show your work!! Transpiration in mL/m2 Condition Wind Control Light Humidity 0 min 0 0 0 0 3min 3.70 0.67 2.15 1.59 6min 7.77 1.34 4.27 1.70 9min 9.87 1.94 5.89 1.85 12min 12.34 2.61 8.15 1.97 15min 14.19 3.13 9.41 2.21 18min 16.29 3.63 10.96 2.46 21min 17.90 4.33 11.53 2.70 24min 19.87 4.78 12.76 2.83 27min 21.60 5.30 13.90 3.13 30 min 23.45 5.75 16.42 3.39 Rates of Transpiration: Rate of Transpiration Condition (mL/m2/min) Wind Control Light Humidity POST LAB: ANALYSIS QUESTIONS 1. Calculate the average rate of water loss per day for each of the treatments (humidity, light, fan, dark or control). Show your work. Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 36 2. Explain why each of the conditions causes an increase or decrease in transpiration compared to the control. Be sure to discuss the activities of the stomata. 3. Why is it advantageous for a plant to close its stomata when water is in short supply? What are the disadvantages? 4. Describe several adaptations that enable plants to reduce water loss from their leaves. Include both structural and physiological adaptations. What environment would you expect a plant to have the adaptations mentioned above? (You may need your book to answer this question). 5. Why did you need to calculate leaf surface area in tabulating your results? 6. Which variable resulted in the greatest rate of water loss? Explain why this factor might increase water loss when compared to the others. 7. What combination of experimental situations will create the most water loss? The least? 8. How does the concept of hydrogen bonding relate to transpirational pull? Be specific in your explanation, using a drawing to assist your explanation. Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 37 Modification of Margaret Bahe’s Transpiration Lab and AP Biology Lab 9 38 Blood Pressure as a Vital Sign Blood pressure is a measure of the changing fluid pressure within the circulatory system. It varies from a peak pressure produced by contraction of the left ventricle, to a low pressure, which is maintained by closure of the aortic valve and elastic recoil of the arterial system. The peak pressure is called systole, and the pressure that is maintained even while the left ventricle is relaxing is called diastole (see Figure 1). Mean arterial pressure (MAP) is not a simple average of the two pressures, because the duration of diastole is twice that of systole. MAP is used by emergency room and intensive care unit personnel as a measure of the adequacy of blood supplied to vital tissues (such as the brain, heart, and kidneys) when the blood pressure is dangerously low. Blood pressure is traditionally reported with the systolic pressure stated first and the diastolic pressure stated second. In adults, 120/80 and below is considered normal blood pressure. High blood pressure is 140/90 or above. The seriousness of low blood pressure, as well as the health risks of high blood pressure (also called hypertension), has been elucidated over the past several decades. High blood pressure is a major risk factor for a number of health problems including strokes and congestive heart failure. Diet and exercise are beneficial, but many people require medication for optimal blood pressure control. In this experiment, you will examine your blood pressure using the Vernier Blood Pressure Sensor. You will compare blood pressures taken before and after exposure to cold. The cold stimulus activates the sympathetic nervous system, resulting in hemodynamic changes that prepare the body for a “fight or flight” response (i.e., when fighting or running from danger). The sensitivity of blood pressure to harmful external or internal injuries makes it useful as a vital sign, an indicator of health, disease, excitement, and stress. Figure 1 Adapted from Biology with Vernier 39 OBJECTIVES In this experiment, you will Compare blood pressure before and after exposure to cold stimulus. • Observe an example of sympathetic nervous system activation (“fight or flight” response). • MATERIALS LabQuest LabQuest App Vernier Blood Pressure Sensor ice water bath towel (paper or cloth) PROCEDURE Select one or more persons from your lab group to be the subject(s). Part I Baseline Blood Pressure 1. Connect the Blood Pressure Sensor to LabQuest. There are two rubber tubes connected to the pressure cuff. One tube has a black Luer-lock connector at the end and the other tube has a bulb pump attached. Connect the Luer-lock connector to the stem on the Blood Pressure Sensor with a gentle half turn. 2. Choose New from the File menu. 3. On the Meter screen, tap Rate. Change the data-collection rate to 60 samples/second and the data-collection length to 100 seconds. Select OK. 4. Attach the Blood Pressure cuff firmly around the upper arm, approximately 2 cm above the elbow. The two rubber hoses from the cuff should be positioned over the biceps muscle (brachial artery) and not under the arm (see Figure 2). 5. Have the subject sit quietly in a chair with his or her forearm resting on a table surface. The person having his or her blood pressure measured must remain still during data collection; there should be no movement of the arm or hand during measurements. 6. Start data collection. Immediately pump the bulb pump until the cuff Figure 2 pressure reaches at least 160 mm Hg. Stop pumping. The cuff will slowly deflate and the pressure will fall. During this time, the systolic, diastolic, mean arterial pressures, and pulse will be calculated by the software. These values will be displayed on the screen. When the cuff pressure drops below 50 mm Hg, the program will stop calculating blood pressure. At this point, you can stop data collection. Release the pressure from the cuff, but do not remove it. Data collection will stop automatically after 100 seconds. If the final pressure value recorded was not below 50 mm Hg, repeat this step to collect another run. 7. Tap the Meter tab. Enter the pulse and the systolic, diastolic, and mean arterial pressures in Table 1. Adapted from Biology with Vernier r 40 Blood Pressure as a Vital Sign Part II Blood Pressure Response to Cold 8. Prepare an ice water bath for use in the next step. The subject will be instructed to place his or her opposite hand (the one to which the Blood Pressure cuff is not attached) in the ice water bath for 15 s. 9. Collect data to examine the body’s response to cold. a. With the cuff still attached, have the subject from Part I put the hand of his or her non-cuffed arm in the ice water bath. b. As soon as the subject’s hand enters the ice water bath, start data collection. c. Pump the bulb until the cuff pressure reaches at least 160 mm Hg, then stop pumping. d. When data have been collected for 15 s, have the subject remove his or her hand from the ice water bath. e. When the blood pressure readings have stabilized (after the pressure drops to 50 mm Hg), the program will stop calculating blood pressure. At this point, you can stop data collection. Release the pressure from the cuff, and remove the cuff from the subject’s arm. 10. Tap the Meter tab. Record the systolic, diastolic, and mean arterial pressures, and the pulse in Table 2. DATA Table 1–Baseline Blood Pressure Systolic pressure (mm Hg) Diastolic pressure (mm Hg) Mean arterial pressure (mm Hg) Pulse (beats/minute) Table 2–Blood Pressure Response to Cold Systolic pressure (mm Hg) Diastolic pressure (mm Hg) Mean arterial pressure (mm Hg) Pulse (beats/minute) DATA ANALYSIS 1. Describe the trends that occurred in the systolic pressure, diastolic pressure, mean arterial pressure, and pulse with cold stimulus. How might these be useful in a “fight or flight” response? Adapted from Biology with Vernier 41 2. Vasovagal syncope is a condition in which severe pain or fright activates the parasympathetic nervous system instead of the sympathetic nervous system, resulting in fainting. Keeping in mind that the parasympathetic system causes a response opposite to that of the sympathetic system, describe the hemodynamic changes that would explain this. 3. As a vital sign, blood pressure is an indicator of general health. A high blood pressure (140/90 or higher) increases the risk of cardiovascular disease and strokes. Collect the systolic and diastolic pressures for the class and calculate the average for each. Rate the class average blood pressure using the following scale: Blood Pressure Category 140/90 or higher High 120–139/80–89 Pre-hypertension 119/79 or below Normal 4. Why does blood pressure differ among individuals? Adapted from Biology with Vernier r 42 Blood Pressure as a Vital Sign 5. Why do some athletes have a low blood pressure? 6. How would the blood pressure differ between an endothermic organism and an ectothermic organism with a change in temperature? EXTENSION Blood pressure is traditionally obtained by using a stethoscope to listen to the brachial artery. The pumping of air into the blood pressure cuff acts to stop the blood flow through this artery. As the pressure is released, the blood again is allowed to flow. When the blood begins to flow, pulsations can be heard through the stethoscope. The pressure in the cuff at that time can be noted, and corresponds closely to the systolic blood pressure. As pressure continues to be released from the cuff, the pulsations of the artery become less audible. The pressure at which they disappear has been found to approximate the diastolic pressure. These sounds are known as Korotkoff Sounds. With a stethoscope, obtain the blood pressure of a classmate by listening for the appearance and disappearance of pulsations as the pressure in the cuff is released. Compare this to the blood pressure you obtained with the Vernier Blood Pressure Sensor. Adapted from Biology with Vernier 43 44 AP Lab 8: Population Genetics & Evolution OVERVIEW In this lab you will: • Learn about the Hardy-Weinberg law of genetic equilibrium, and • Study the relationship between evolution and changes in allele frequency by using your class as a sample population. OBJECTIVES Before doing this lab you should understand: • How natural selection can alter allele frequencies in a population • The Hardy-Weinberg equation and its use in determining the frequency of alleles in a population; and, • The effects of allelic frequencies of selection against the homozygous recessive or other genotypes. After doing this lab you should be able to: • Calculate the frequencies of alleles and genotypes in the gene pool of a population using the Hardy-Weinberg formula, and • Discuss natural selection and other causes of microevolution as deviations from the conditions required to maintain Hardy-Weinberg equilibrium. INTRODUCTION In 1908, G. H. Harding and W. Weinberg independently suggested a scheme whereby evolution could be viewed as changes in the frequency of alleles in a population of organisms. They reasoned that if A and a are alleles for a particular gene locus and each diploid individual has two such loci, then p can be designated as the frequency of the A allele and q as the frequency of the a allele. Thus, in a population of 100 individuals (each with two loci) in which 40% of the alleles are A, p would be 0.40. The rest of the alleles (60%) would be a, and q would equal 0.60. Hardy and Weinberg also argued that if five conditions are met, the population’s allele and genotype frequencies will remain constant from generation to generation. These conditions are as follows. 1. The population is very large. The effects of chance on changes in allele frequencies is thereby greatly reduced. 2. Individuals show no mating preference for A or a, i.e., mating is random. 3. There is no mutation of alleles. 4. No differential migration occurs (no immigration or emigration). 5. All genotypes have an equal chance of surviving and reproducing, i.e., there is no selection. Basically, the Hardy-Weinberg equation describes the status quo. If the five conditions are met, then no change will occur in either allele or genotype frequencies in the population. Of what value is such a rule? It provides a yardstick by which changes in allele frequency, and therefore evolution, can be measured. One can look at a population and ask: Is evolution occurring with respect to a particular gene locus? The purpose of this laboratory is to examine the conditions necessary for maintaining the status quo and see how selection changes allele frequency. This will be done by simulating the evolutionary process using your class as a sample population. 45 AP Lab 8: Population Genetics and Evolution PROCEDURE Exercise 8A: Estimating Allele Frequencies for a Specific Trait within a Sample Population Using the class as a sample population, the allele frequency of a gene controlling the ability to taste the chemical PTC (phenylthiocarbamide) could be estimated. A bitter-taste reaction to PTC is evidence of the presence of a dominant allele in either the homozygous condition (AA) or the heterozygous condition (Aa). The inability to taste the chemical at all depends on the presence of homozygous recessive alleles (aa). (Instead of PTC tasting, other traits, such as tongue-rolling, may be used.) To estimate the frequency of the PTC-tasting allele in the population, one must find p. To find p, one must first determine q (the frequency of the nontasting PTC allele), because only the genotype of the homozygous recessive individuals is known for sure (i.e., those that show the dominant trait could be AA or Aa). 1. Using the PTC taste test papers provided, tear off a short strip and press it to your tongue tip. PTC tasters will sense a bitter taste. For the purposes of this exercise these individuals are considered to be tasters. 2. A decimal number representing the frequency of tasters (p2 + 2pq) should be calculated by dividing the number of tasters in the class by the total number of students in the class. A decimal number representing the frequency of nontasters (q2) can be obtained by dividing the number of nontasters by the total number of students. You should then record these numbers in Table 8.1. 3. Use the Hardy-Weinberg equation to determine the frequencies (p and q) of the two alleles. The frequency q can be calculated by taking the square root of q2. Once q has been determined, p can be determined because 1 - q = p. Record these values in Table 8.1. Table 8.1: Phenotypic Proportions of Tasters and Nontasters and Frequencies of the Determining Alleles Phenotypes Class Population North American Population % Tasters (p2 + 2pq) % Nontasters (q2) 0.55 0.45 Allele Frequency Based on the H-W Equation p q Exercise 8B: A Test of an Ideal Hardy-Weinberg Population – NO SELECTION It will be assumed that the class is initially a population of randomly mating heterozygous individuals each of genotype Aa. Therefore, the initial allele frequency is 0.5 for the dominant allele A and for the recessive allele a, that is p = 0.5 and q = 0.5. Each member of the class will receive four cards. Two cards will have the letter A printed on them and the other two the letter a. A represents the dominant allele and a is a recessive allele. The four cards represent the products of meiosis. Each student should work with a partner. Each student (parent) contributes a haploid set of chromosomes in the next generation. So for each trait, each partner donates one allele for each offspring. 46 AP Lab 8: Population Genetics and Evolution 1. Turn the four cards over so the letters are not showing, shuffle them, and take the card on top to contribute to the production of the first offspring. Your partner should do the same. Put the two cards together. You are now the proud parents of the first offspring. One of you should record the genotype of this offspring in the Generation 1 row of Table 8.2. Each student pair must produce two offspring, so all four cards must be reshuffled and the process repeated to produce a second offspring. 2. Your partner should then record the genotype of the second offspring in his or her Table 8.2. The very short reproductive career of this generation is over. You and your partner now become the next generation by assuming the genotypes of the two offspring. That is, student 1 assumes the genotype of the first offspring and student 2 asumes the genotype of the second offspring. 3. Each student should obtain, if necessary, new cards representing the alleles in his or her respective gametes after the process of meiosis. Each student should randomly seek out another person with whom to mate in order to produce the offspring of the next generation. The sex of your mate does not matter, nor does the genotype. You should follow the same mating process as for the first generation, being sure to record your new genotype after each generation in the table. Class data should be collected after each generation for five generations. At the end of each generation, remember to record the genotype that you have assumed. Your teacher will collect class data after each generation by asking you to raise your hand to report your genotype. Record these data in Table 8.2. Table 8.2: Data Generations Offspring’s Genotype (AA, Aa, or aa) Class Totals For Each Genotype AA Aa aa Total 1 2 3 4 5 47 AP Lab 8: Population Genetics and Evolution Exercise 8B: Analysis of Results 1. Genotype Frequency: From the genotypes recorded for Generation 5 in Table 8.2, genotype frequencies for the class should be computed using the following equations: Frequency of AA = Total AA Total AA + Total Aa + Total aa Frequency of Aa = Total Aa Total AA + Total Aa + Total aa Frequency of aa = Total aa Total AA + Total Aa + Total aa What are the theoretical genotype frequencies of the beginning population where p= 0.5 and q= 0.5? Record below. P2 (AA)_______ 2pq (Aa )_______ q2 (aa )_______ What are genotype frequencies after five generations of mating? Calculate from the class data and record below. P2 (AA)_______ 2. 2pq (Aa)________ q2(aa)________ The allele frequencies, p and q, should be calculated for the population after five generations of the random mating. Number of A alleles present at the fifth generation Number of offspring with genotype AA _____x (2) = ______ A alleles Number of offspring with genotype Aa _____x (1) = ______ A alleles Total = ______ A alleles p= Total number of A alleles = _______ Total number of alleles in the population Number of a alleles present at the fifth generation Number of offspring with genotype aa _____x (2) = ______ a alleles Number of offspring with genotype Aa _____x (1) = ______ a alleles Total = ______ a alleles q= Total number of a alleles = _______ Total number of alleles in the population Exercise 8B: A Test of Ideal Hardy-Weinberg Equilibrium p Original Population q Fifth Generation 48 AP Lab 8: Population Genetics and Evolution Exercise 8C: Selection In humans, several genetic diseases have been well characterized. Some of these diseases are controlled by a single allele where the homozygous recessive gentotype has a high probability of not reaching reproductive maturity, but both the homozygous dominant and the heterozygous individual survive. At this point, both the homozygous dominant (AA) individuals and the heterozygous individuals (Aa) will be considered to be phenotypically identical. The selection will be made against the homozygous recessive individuals (aa) 100% of the time. Procedure 1. The procedure is similar to that in the preceding exercise. You should start with the initial genotype of Aa and, with another student, determine the genotypes of your two offspring. This time, however, there is one important difference. Every time an offspring is aa, it dies. To maintain the constant population size, the two parents of an aa ofspring must try again until they produce two surviving offspring (AA or Aa). 2. The process should proceed through five generations with selection against the homozygous recessive offspring. It is important to remember that an aa individual cannot mate. After each generation, you should record the genotype that you assume. Also, class data should be collected after each generation and recorded in Table 8.3. Data Table 8.3 Generation Offspring’s Genotype (AA or Aa) Class Totals AA Aa Total 1 2 3 4 5 Exercise 8C: Analysis of Results Allele Frequency: The allele frequencies, p and q, should be calculated for the population after five generations of random mating. Number of A alleles present at the fifth generation Number of offspring of AA ______ x (2) = _______ A alleles Number of offspring of Aa __ ___ x (1) = _______ A alleles Total = _______ A alleles p = ________ 49 AP Lab 8: Population Genetics and Evolution Number of a alleles present at the fifth generation Number of offspring of aa ______ x (2) = _______ a alleles Number of offspring of Aa ______x (1) = _______ a alleles Total = _______ a alleles q = ________ Exercise 8C: Selection p q Original Population Fifth Generation Exercise 8D: Heterozygote Advantage From exercise 8C, it is easy to see what happens to the lethal recessive allele in the population. However, data from many human populations show an unexpectedly high frequency of the sickle-cell allele (a) in some populations. Thus our simulation does not accurately reflect the real situation; this is because individuals who are heterozygous are slightly more resistant to a deadly form of malaria than homozygous dominant individuals. In other words, there is a slight selection against homozygous dominant individuals as compared to heterozygotes. This fact is easily incorporated into our simulation. Procedure 1. In this round, keep everything the same as it was in Exercise 8C, except that if your offspring is AA, flip a coin. If the coin lands heads-up, the individual does not survive; if it lands tails-up, the individual does survive. 2. Simulate five generations, starting again with the initial genotype from Exercise 8B. The genotype aa never survives, and the genotype AA only survives if the coin toss comes up tails. Since we want to maintain a constant population size , the same two parents must try again until they produce two surviving offspring. Get new “allele” cards from the pool as needed. Total the class genotypes and calculate the values of p and q. 3. Starting with the F5 genotype, go through five more generations and again total the class genotypes and calculate the values of p and q. Data Table 8.4 Generation Offspring’s Genotype (AA or Aa) Class Totals AA Aa Total 1 2 3 4 5 50 AP Lab 8: Population Genetics and Evolution Exercise 8D: Analysis of Results (Part 1) Allele Frequency: The allele frequencies, p and q, should be calculated for the population after five generations of random mating. Number of A alleles present at the generation Number of offspring of AA ______ x (2) = _______ A alleles Number of offspring of Aa __ ___ x (1) = _______ A alleles Total = _______ A alleles p = ________ Number of a alleles present at the fifth generation Number of offspring of aa ______ x (2) = _______ a alleles Number of offspring of Aa ______x (1) = _______ a alleles Total = _______ a alleles q = ________ Exercise 8D: Heterozygote Advantage (Generations 1 – 5) p Original Population q Fifth Generation Data Table 8.5 Generation Offspring’s Genotype (AA or Aa) Class Totals AA Aa Total 6 7 8 9 10 51 AP Lab 8: Population Genetics and Evolution Exercise 8D: Analysis of Results (Part 2) Allele Frequency: The allele frequencies, p and q, should be calculated for the population after ten generations of random mating. Number of A alleles present at the 10th generation Number of offspring of AA ______ x (2) = _______ A alleles Number of offspring of Aa __ ___ x (1) = _______ A alleles Total = _______ A alleles p = ________ Number of a alleles present at the 10th generation Number of offspring of aa ______ x (2) = _______ a alleles Number of offspring of Aa ______x (1) = _______ a alleles Total = _______ a alleles q = ________ Exercise 8D: Heterozygote Advantage (Generations 6 – 10) p Original Population (Generation 1) Tenth Generation q ANALYSIS QUESTIONS Case 8A: Allele Frequency 1. What percentage are heterozygotes? Show your work 2. What percentage are homozygotes? Show your work Case 8B: A Test of Ideal Hardy-Weinberg Equilibrium 1. What does the Hardy-Weinberg equation predict for the new p and q? 2. Do the results you obtained in this simulation agree? If not, why? 3. What major assumption(s) were NOT followed in this simulation? 52 AP Lab 8: Population Genetics and Evolution Case 8C: Selection 4. How do the new frequencies (after 5 generations) of p and q compare to the initial frequencies? 5. What major assumption(s) were NOT followed in this simulation? 6. Predict what would happen to the frequencies of p and qif you simulated another 5 generations. 7. In a large population, would it be possible to completely eliminate a deleterious recessive allele? Why or why not? Case 8D: Heterozygote Advantage 8. Explain how (and why) the changes in p and q frequencies in Case 8C compare with both Case 8B and Case 8D. 9. What is the importance of heterozygotes in maintaining genetic variation in populations? 53 AP Lab 8: Population Genetics and Evolution HARDY-WEINBERG PROBLEMS 1. In Drosophila, the allele for normal-length wings is dominant over the allele for vestigial wings (vestigial wings are stubby little curls that cannot be used for flight). In a population of 1,000 individuals, 360 show the recessive phenotype. How many individuals would you expect to be homozygous dominant and heterozygous for this trait? 2. The allele for unattached earlobes is dominant over the allele for attached earlobes. In a population of 500 individuals, 25% show the recessive phenotype. How many individuals would you expect to be homozygous dominant and heterozygous for this trait? 3. The allele for the hair pattern called “widow’s peak” is dominant over the allele for no “widow’s peak.” In a population of 1,000 individuals, 510 show the dominant phenotype. How many individuals would you expect of each of the possible three genotypes for this trait? 4. In the United States about 16% of the population is Rh negative. The allele for Rh negative is recessive to the allele for Rh positive. If the student population of a high school in the U.S. is 2,000, how many students would you expect for each of the three possible genotypes? 5. In certain African countries, 4% of the newborn babies have sickle cell anemia, which is a recessive trait. Out of a random population of 1,000 newborn babies, how many would you expect for each of the three possible phenotypes? 6. In a certain population, the dominant phenotype of a certain trait occurs 91% of the time. What is the frequency of the dominant allele? 54 Enzyme Action: Testing Catalase Activity Enzymes are globular proteins, responsible for most of the chemical activities of living organisms. Enzymes act as catalysts, substances that speed up chemical reactions without being destroyed or altered during the process. One enzyme may catalyze thousands of reactions every second and can be used over and over again. Temperature, pH, and concentration can effect how enzymes perform. Most organisms have a preferred temperature and pH range that they perform best. Enzymes have a specific shape. When they are altered their shape (also called conformation) changes and makes them unusable. For example, If the environment of the enzyme is too acidic, or too basic, the enzyme may irreversibly denature, or unravel, until it no longer has the shape necessary for proper functioning. Hydrogen Peroxide (H2O2) is toxic to most living organisms. Many organisms are capable of enzymatically destroying the H2O2 before it can do much damage. H2O2 can be converted to oxygen and water, in the following reaction: 2 H2 O 2 2 H2 O + O 2 This reaction will occurs spontaneously, but adding an enzymes increases the rate at which the reaction will occur. At least two different enzymes are known to catalyze this reaction: catalase, found in animals and protists, and peroxidase, found in plants. The rate of a chemical reaction may be studied in a number of ways including: • measuring the rate of appearance of a product (in this case, O2, which is given off as a gas) • measuring the rate of disappearance of substrate (in this case, H2O2) • measuring the pressure of the product as it appears (in this case, O2). In this experiment, you will measure the rate of enzyme activity under various conditions, such as different enzyme concentrations, pH values, and temperatures. It is possible to measure the concentration of oxygen gas formed as H2O2 is destroyed using an O2 Gas Sensor. At the start of the reaction, there is no product, and the concentration is the same as the atmosphere. After a short time, oxygen accumulates at a rather constant rate. The slope of the curve at this initial time is constant and is called the initial rate. As the peroxide is destroyed, less of it is available to react and the O2 is produced at lower rates. When no more peroxide is left, O2 is no longer produced. OBJECTIVES In this experiment, you will • Use an Oxygen Gas Sensor to measure the production of oxygen gas as hydrogen peroxide is destroyed by the enzyme catalase or peroxidase at various enzyme concentrations. • Measure and compare the initial rates of reaction for this enzyme when different concentrations of enzyme react with H2O2. • Measure the production of oxygen gas as hydrogen peroxide is destroyed by the enzyme catalase or peroxidase at various temperatures. • Measure and compare the initial rates of reaction for the enzyme at each temperature. • Measure the production of oxygen gas as hydrogen peroxide is destroyed by the enzyme catalase or peroxidase at various pH values. • Measure and compare the initial rates of reaction for the enzyme at each pH value. • To maximize time, we will do two variables (as assigned on your card) simultaneously since you have access to the Lab Quest and 2 Oxygen probes. Adapted from Advanced Biology with Vernier 55 Figure 1 Materials LabQuest Interface 2 Vernier O2 Gas Sensors Water baths ( hot, cold, room) Disposable pipets Distilled water (50mL) 3.0% H2O2 (30mL) Thermometer (Vernier temp probe) 2- 250 mL Nalgene bottles per group 3 buffers (7mL) (buffers 4,7,10) *Nalgene bottle goes directly in the bath 5 ml syringe (qty 4) for H2O2 and Buffers Procedure 1. Obtain and wear goggles. 2. Connect the O2 Gas Sensor to LabQuest and choose New from the File menu. If you have an older sensor that does not auto-ID, manually set up the sensor. 3. On the Meter screen, tap Rate. Change the data-collection rate to 0.2 samples/second and the datacollection length to 180 seconds. 4. You will be using a Nalgene Bottle for all three parts. Part I: Testing the Effect of Enzyme Concentration *****You will be running two levels At the same time in TWO different Nalgene bottles***** 5. Fill each Nalgene bottle with 5 mL of 3.0% H2O2 and 5 mL of water. 6. Add the number of enzyme suspension indicated to each bottle. For example: If your card says to add 5 drops and 20 drops. Add 5 drops to one Nalgene Bottle AND then add 20 drops to the other Nalgene Bottle. 7. Place the sensor in the Nalgene bottle and wait 30 seconds. 8. Select the Record key on your LabQuest to begin taking measurements. While the measurements are being taken, you can toggle between the screens by selecting the icons at the top of the screen. 9. Record your measurements in Table 2 10. When data collection is complete, a graph of O2 gas vs. time will be displayed. Remove the O2 Gas Sensor from the Nalgene bottle. Rinse the bottle with water and dry with a paper towel. 11. Store the data from the first run by tapping the File Cabinet icon. 56 Part II Testing the Effect of Temperature Your teacher will assign a temperature range for your lab group to test. Depending on your assigned temperature range, set up your water bath as described below. Place a thermometer in your water bath to assist in maintaining the proper temperature throughout the experiment. • • • 0–5°C: 600 mL beaker filled with ice and water. 20–25°C: No water bath needed to maintain room temperature. 50–55°C: 600 mL beaker filled hot water. 1. Fill the Nalgene bottle with 5 mL of 3.0% H2O2 and 5 mL of water then place the Nalgene bottle in the appropriate water bath (look at the two assigned values on your card in the water bath. The Nalgene bottle should be in the water bath for 5 minutes before proceeding to Step 2. Record the temperature of the water bath, as indicated on the thermometer, in the space provided in Table 3. 2. Add 10 drops of enzyme solution to the Nalgene bottle. 3. Calculate the average rate for the three trials you tested. Record the average in Table 3. 4. Record the average rate and the temperature of your water bath from Table 3 on the class chalkboard. When the entire class has reported their data on the chalkboard, record the class data in Table 5. Part III Testing the Effect of pH *For each buffer, you will perform each of the steps below. Clear all runs from your LabQuest before you begin. 1. Add 5 mL of 3% H2O2 and 5 mL of pH 3 buffer to a Nalgene bottle 2. Tap Table. Choose Clear All Data from the Table menu. 3. Tap Graph to display the graph. 4. Add 10 drops of enzyme solution to the Nalgene bottle. 5. Place the Oxygen sensor in the top of the Nalgene bottle. 6. Record your measurements in table 4 7. Graph all three runs of data on a single graph. a. Tap Run 3 and select All Runs. All three runs will now be displayed on the same graph axes. b. Use the displayed graph and the data in Table 5 to answer the questions for Part III. 57 DATA Table 2: Part I Effect of Enzyme Concentration Table 2 Bottle Slope (rate= % / s) Trial 1 Trial 2 Trial 3 Trial 4 Mean Rate 5 drops 10 drops 20 drops Table 3: Part II Effect of Temperature Table 3 Slope (rate= % / s) Temperature °C Trial 1 Trial 2 Trial 3 Trial 4 Mean Rate cold room temp hot Table 4: Part III Effect of pH Table 4 pH Slope (rate= % / s) Trial 1 Trial 2 Trial 3 Trial 4 Slope Mean Rate (rate= % / s) pH 4 pH 7 pH 10 Table 5: Class Data pH G1 G2 G3 G4 G5 G6 G7 G8 Avg. Slope Mean Rate (rate= % / s) pH 4 pH 7 pH 10 Cold Room Temp 5 drops 10 drops 20 drops 58 PROCESSING THE DATA 1. For Part II of this experiment, make a graph of the rate of enzyme activity vs. temperature by hand. Plot the rate values for the class data in Table 3 on the y-axis and the temperature on the x-axis. Use this graph to answer the questions for Part II. Analysis Part I Effect of Enzyme Concentration 1. How does changing the concentration of enzyme affect the rate of decomposition of H2O2? 2. If one increases the concentration of enzyme to thirty drops, what do you think will happen to the rate of reaction? Predict what the rate would be for 30 drops. 3. Are there other factors in the experiment that may prevent the rate from reaching the previously predicted rate from # 2? Explain your answer. Part II Effect of Temperature 4. At what temperature is the rate of enzyme activity the highest? Lowest? Explain. 5. How does changing the temperature affect the rate of enzyme activity? Does this follow a pattern you anticipated? 6. Why might the enzyme activity decrease at very high temperatures? 59 Part III Effect of pH 7. At what pH is the rate of enzyme activity the highest? Lowest? 8. How does changing the pH affect the rate of the enzyme activity? 9. Choose one variable and perform a linear regression to calculate the rate of reaction. What does a linear regression show? Explain a. Choose Curve Fit from the Analyze menu. b. Select Linear for the Fit Equation. The linear-regression statistics for these two data columns are displayed for the equation in the form y = mx + b c. Enter the absolute value of the slope, m, as the reaction rate in Table 2. d. Select OK. 10. Graph all three of your runs of data and the class average on a single graph for each variable. (You will have 3 graphs). 60 61 62 63 64 Diffusion and Osmosis Across Membranes BACKGROUND In nature, things tend to move from areas of high concentration to low concentration. To survive, all organisms must exchange molecules (gases, nutrients, wastes, and water) into and out of their cells. Diffusion is a process by which ions or molecules move through a medium from high to low concentrations. For instance, oxygen from the atmosphere and photosynthetic organisms diffuses through pond water for use by fish and other aquatic animals. When animals use oxygen, more oxygen will diffuse from the neighboring environment to replace it. Waste products released by these animals are diluted by diffusion and dispersed throughout the pond. At the cellular level, ions or molecules diffuse through the intracellular and extracellular fluids to cross the cell membrane. The cell membrane is said to be selectively permeable (semi-permeable), because it allows some molecules to move across but not others. Due to their small size, water molecules and certain gases like CO2 and O2 can move freely back and forth across the membrane. However, larger molecules (proteins, sugars, DNA, RNA) and charged particles (ions) are not allowed to pass through the membrane without the help of transport proteins. On a larger scale, think of using strainer to sift a large cup of wet beach sand. Certain particles will fit through the holes (water, small sand particles) and other larger particles won’t (pebbles, shells). A concentration gradient exists when concentrations inside and outside the cell are not equal. When a concentration gradient exists, diffusion continues until the molecules are equally distributed. There are two ways that particles move across the cell membrane: passive and active transport. Passive transport (diffusion) occurs spontaneously and requires no energy to move molecules from high to low concentrations. In passive transport, no energy is needed because the particles are small enough to pass through the membrane. When determining what will be moving across the membrane, we have to think about the particle’s size and charge. If it’s too big or charged, it is more difficult to go through. Depending on the composition of a solution, water may be the only thing small enough to move across the membrane. Osmosis is a special form of diffusion that involves the movement of water across a membrane. Facilitated diffusion describes situations where transport channel proteins are used to help molecules that are too large to move freely through the membrane. In the case of larger molecules (protein, starch, DNA, RNA) transport proteins act as gateways to help particles pass from high to low concentrations. Active transport uses protein pumps to push molecules against the concentration gradient (from low to high concentrations). This requires the cell to use chemical energy to move substances across the cell membrane. For example, neurons use sodium-potassium pumps to transmit nerve impulses. The rate of diffusion can be influenced by the temperature of the environment, pressure, and concentration gradient of molecules (solutes). 65 OBJECTIVES In this experiment, you will • Determine if the diffusion rate for a molecule is affected by the presence of a second molecule. • Study the effect of concentration gradients on the rate of diffusion. • Determine the molar concentration of carrot or potato cells. • Determine the water potential of carrot or potato cells. • Observe the effect of hypotonic and hypertonic solutions on the cell membrane of elodea or onion cells. PART I: DIFFUSION MATERIALS plastic cups distilled water 15% glucose/1% starch Small funnel (optional) Dialysis tubing Lugol’s solution Glucose test strips balance PROCEDURE 1. 2. 3. 4. 5. 6. 7. 8. 9. Wear your goggles Obtain the 15 mL of a 15% glucose/1%starch solution Test the solution for the presence of glucose and starch. Record in Table 1. Obtain a piece of dialysis tubing (25-30cm long). Tie one end off in a knot or with string. Using your fingers, carefully open the tubing and pour 15ml of the solution into the open end of the dialysis tubing using a funnel (be sure not to get any solution on the outside of the tubing). Tie off the tubing (be sure to leave room in the bag for the volume of liquid to expand). Fill the plastic cup (or 250 ml beaker) 2/3 of way with distilled water. Add 4ml of Lugol’s solution to the water. Record the color of the solution in Table 1. Immerse the tubing (tied on both ends) in the cup (dialysis bag should be completely submerged) Let stand for 30 minutes. Record the colors of the water and the bag at the end of 30 minutes. PART II: OSMOSIS BACKGROUND Isotonic, Hypertonic, and Hypotonic are terms used when predicting the net movement of water by comparing concentrations of solutions inside a cell and in its environment. A more precise measurement of the net flow of water can be calculated using the concept of water potential. Think of water potential like potential energy, moving from high to low (outlined in Part IV). For the following examples, keep in mind that salt is an ionic compound that can’t move across the membrane. Therefore water will be the substance (molecule) moving across the membrane from an area of high to low concentration of water. A salt water fish living in its normal habitat, the ocean, is in an isotonic solution or environment. This is because the concentration of salt (and other solutes) and water are the same inside and outside of the organism’s cells (no concentration gradient). At equilibrium there is no net movement of water across the membrane because the water potential is equal on both sides. Placing the salt water fish in a freshwater environment creates a concentration gradient because the fish has more dissolved solutes than the environment. The salt water fish is in a hypotonic solution because the water potential is greater outside the cell than inside. Because the water has less dissolved particles (higher water potential) than the fish’s cells, water moves into the cells, from an area of high to a low 66 Diffusion Through Membranes water potential. As more water enters the cells, cytolysis occurs, eventually causing them to swell and rupture. Like a balloon, if too much water enters, the membrane can burst, killing the cell. Some cells, paramecia, prevent too much water from entering, by pumping excess water out via the contractile vacuole. Fungi, plants, and bacteria have a cell wall that will not allow the cell to fill beyond capacity. Conversely, placing a freshwater fish in a salt water environment, hypertonic solution, creates a gradient because the environment has more dissolved particles (lower water potential) than the fish’s cells. Plasmolysis, cell shrinkage, occurs when the concentration of water inside the cell is greater than outside, more water moves out than in. If a cell becomes too dehydrated, it may not be able to survive. In this investigation, you will study the effect of concentration gradients on the rate of diffusion. MATERIALS plastic cups/beaker distilled water string 5 lb bag sugar Small funnel (optional) Dialysis tubing (6 pieces) balance PROCEDURE 1. Obtain 6 pieces of dialysis tubing (approximately 20-25cm long) 2. Time off one end of each piece of tubing to make 6 bags 3. Using a funnel, pour 15-20 mL of each solution into its own dialysis bag. (distilled water, sucrose solutions 0.2M, 0.4M, 0.6M, 0.8M, and 1.0M) 4. Remove most of the air from the bag and tie off the end (leave space for expansion of the contents in the bag) 5. Rinse each bag with distilled water and pat dry. 6. Mass each bag and record on Table 2. 7. Put each bag in a separate cup. Fill 2/3 full with distilled water. Bag must be submerged. 8. Let stand 30 minutes 9. At the end of 30 minutes, remove the bags, pat dry, mass them, and record in Table 2. 10. Add your lab group’s data to the class data chart. 11. Graph the results for Table 2 and Table 3. PART III: WATER POTENTIAL BACKGROUND Through the collaborative work of scientists, instead of predicting, we can quantitatively measure the movement of water by determining the water potential. Water potential is a term used when predicting the movement of water into or out of cells. Water will always move from an area of higher water potential (higher free energy; more water molecules) to an area of lower water potential (lower free energy; fewer water molecules). Water potential, then, measures the tendency of water to leave one place in favor of another place. The symbol for water potential is the Greek letter Psi, Ψ. Water potential is impacted by two physical factors: 1. pressure component called pressure potential Ψp, which increases water potential. 2. the effects of solutes called solute potential, Ψs, which reduces water potential. Ψ = Ψp + ΨS Water potential = Pressure potential + Solute potential 67 There is a numerical relationship between water potential and its components (pressure potential and solute potential). The water potential value can be positive, zero, or negative. Water can move freely across the membrane, but will always move in the direction of the lower water potential. Water potential depends on pressure and solutes. Pressure Potential Increase = more positive Ψ value Decrease (tension/pulling) = more negative Ψ value, as in the case of dead xylem cells Solute Potential Is always negative Distilled water in an open beaker (at atmospheric pressure) has a water potential of zero (Ψ= 0). A water potential value can be positive, negative, or zero. Water potential is usually measured in bars, which is a metric unit of pressure. One bar is approximately equal to 1 atmosphere. Another measure of pressure is the megapascal (MPa). (1 MPa = 10 bars, 1 kPa = 0.1 bar) Water movement is directly proportional to the pressure on a system. For example, pressing on the plunger of a water- filled syringe causes the water to exit via any opening. In plant cells this physical pressure can be exerted by the cell pressing against the partially elastic cell wall. It is important to realize that water potential and solute concentration are inversely related. More dissolved particles would yield a lower water potential (less water per volume). Less dissolved particles or solute equates to a higher water potential (more water per volume). In other words, the solute potential is the effect that solutes have on a solution's overall water potential. The following figures (potato tissue in distilled water) will help to illustrate the relationship between water potential and its components. 68 Diffusion Through Membranes Due to the tissue’s higher solute potential (Ψs), the water potential is lower inside the cells. Water will move (by osmosis) from the surrounding water where water potential is higher, into the cell where water potential is lower (more negative). In Figure a, the pure water potential (Ψ= 0) and the solute potential (Ψs = -3). For this example, assume that the solute will not diffuse out of the cell. By the end of the observation, the movement of water into the cell causes the cell to swell and the cell contents push against the cell wall to produce an increase in pressure potential (turgor) (Ψp = 3). Eventually, enough turgor pressure builds up to balance the negative solute potential of the cell. When the water potential of the cell equals the water potential of the pure water outside the cell (Ψof cell = Ψof pure water = 0), a dynamic equilibrium is reached and there will be no NET water movement. In this experiment, you will measure the percent change in mass of carrot cells after they have soaked in various concentrations of sugar solutions for a 24 hour period. You will use this data to calculate the the molar concentration and water potential of carrot or potato cells. MATERIALS Computer Logger Pro 4 baby carrot slices 250mL beaker plastic wrap balance paper towels assigned sucrose solutions (0, 0.2, 0.4, 0.6, 0.8, or 1M) PROCEDURE You will be assigned one or more of the sugar solutions in which to soak your carrots. 1. Pour 100 mL of the assigned sugar solution into a 250 mL beaker. 2. Measure and record the mass of the four carrot slices together. 3. Put the four carrot slices into the beaker of sugar solution. 4. Cover the beaker with plastic wrap and allow it to stand for a 24 hour period. 5. Remove the carrots from the beaker, blot with a paper towel, and determine the mass of the four carrots together after soaking. 6. Calculate the percent change in mass and record data for the sugar concentration tested in Table 4 as well as on the class data sheet Table 5. 7. Repeat Steps 1–6 for any additional assigned sugar solutions. 69 PROCESSING THE DATA 1. Plot the percent change in mass on the y-axis and concentration of sugar on the x-axis. 2. The point at which the line of best fit crosses the x-axis represents the molar concentration of sucrose with a water potential that is equal to the carrot tissue water potential. At this concentration, there is no net gain or loss of water from the tissue. 3. Perform a linear regression to determine the molar concentration of sugar solution at which the mass of the carrot cells does not change. a. Move the mouse pointer to the first data point. Press the left mouse button. Drag the pointer to the last data point. b. Select the Regression option from the Analyze menu. A floating box will appear with the formula for a best-fit line. c. Choose Interpolate from the Analyze menu. Move the mouse pointer along the regression line to the point where the line crosses the x-axis. This point represents the molar concentration of sugar with a water potential equal to the carrot cells water potential. Meaning, there is no net movement of water in or out. Record this concentration in Table 6. 4. Use the sugar molar concentration from the previous step to calculate the solute potential of the sugar solution. a. Calculate the solute potential of the sugar solution using the equation Ψs = - iCRT where i C R T = = = = ionization constant (1.0 for sugar since it doesn’t ionize in water) sugar molar concentration (determined from the graph) pressure constant (0.0831 liter bars/mol-K OR 8.314 kPa L/mol K) temperature (295 K) b. Record this value with units in Table 6. 5. Calculate the water potential of the solution using the equation Ψ = Ψp + Ψs The pressure potential of the solution in this case is zero because the solution is at equilibrium. Record the water potential value with units in Table 6. 70 Diffusion Through Membranes PART IV PLASMOLYSIS In this investigation you will observe the effect of hypotonic and hypertonic solutions on the cell membrane of elodea or onion cells. MATERIALS paper towels eye dropper blank slides cover slip 15% NaCl solution elodea or onion microscope PROCEDURE 1. Make a wet mount slide of the elodea or onion epidermis. Observe and sketch at 100x magnification 2. Add 2 to 3 drops of 15% NACl to the edge of the coverslip. On the opposite side of the coverslip where you added the salt, use a piece paper towel to draw the fluid across the plant. Observe and sketch at 100x magnification. 3. Remove the coverslip and flood the elodea or onion with water. Observe and sketch at 100x magnification. EXTENSIONS 1. Make a plot of the rate of diffusion vs. the salt concentration. Using your plot, estimate the rate of diffusion of a 3% salt solution. 2. If the results of the experiments in Part I can be extrapolated to diffusion in living systems, how would a single-celled organism respond in an oxygen rich pond compared to an oxygen-poor pond? Explain. 3. Design an experiment to determine the effect of temperature on the diffusion of salt. Perform the experiment you designed. 4. Ectotherms are organisms whose body temperatures vary with the surrounding environment. On the basis of your data from Extension Question 3, how do you expect the oxygen consumption of ectotherms to vary as the temperature varies? Explain. 5. If waste products of an aquatic single-celled organism were released into a pond, how would that affect the organism’s ability to obtain oxygen from the pond water? Explain how your data from Part II supports your answer. 71 DATA Table 1: Diffusion Data with 15% glucose/1% Starch solution Diffusion Data Table Dialysis Tubing Initial Contents Solution Color Initial Final Presence of Glucose (+/-) Initial Final Presence of Starch (+/-) Initial Final Beaker Table 2: Lab Group Data on Osmosis through Dialysis Bag Dialysis Bag Contents Initial Mass (g) Mass Difference (g) Final Mass (g) Percent Change in Mass 0.0 M Distilled H2O 0.2 M Sucrose 0.4 M Sucrose 0.6 M Sucrose 0.8 M Sucrose 1.0 M Sucrose Table 3: Class Data on Osmosis through Dialysis Bag Dialysis Bag Contents Percent Change in Mass Group 1 Group 2 Group 3 Group 4 Group 5 Group 6 Group 7 Group 8 TOTAL Class Avg 0.0 M Distilled H 2O 0.2 M Sucrose 0.4 M Sucrose 0.6 M Sucrose 0.8 M Sucrose 1.0 M Sucrose 72 Diffusion Through Membranes Table 4: Lab Data for Carrot Cells Sugar solution concentration Initial mass (g) Final mass (g) Mass difference (g) Percent change in mass 0.00 M 0.2 M 0.4 M 0.6 M 0.8 M 1.0 M Table 5: Class Data for Carrot Cells (% change) Sugar solution Group 1 concentration Group 2 Group 3 Group 4 Group 5 Group 6 Group 7 Group 8 Total Class average 0.0 M 0.2 M 0.4 M 0.6 M 0.8 M 1.0 M Table 6: Group Data for Water Potential Sugar molar concentration in carrot = Solute potential of solution = Water potential of solution = 73 PRE-LAB QUESTIONS (PARTS I &II) 1. What makes dialysis tubing an ideal model for the plasma membrane? 2. Predict the impact of temperature, concentration gradient, and pressure on the rate of diffusion. 3. Explain the role of integral proteins in diffusion. 4. Explain the role of cholesterol in the plasma membrane. 5. Explain how small molecules versus large molecules pass through the plasma membrane. 6. Explain the difference between plant and animal cells response to a hypertonic solution. 7. Explain the difference between plant and animal cells response to a hypotonic solution. 8. Predict how you think the following cells will behave in distilled water. Animal cell_____________________ fungus cell_____________________ Elodea__________________________ carrot stick____________________ Yeast cell_______________________ blood cell______________________ 74 Diffusion Through Membranes POST LAB ANALYSIS QUESTIONS (PARTS I & II) 1. Discuss the sizes of the substance molecules relative to each other and the dialysis membrane. How did you determine their relative sizes? 2. Which solutions, if any, produced a positive slope? Was water moving in or out of the cell (dialysis tubing) under these circumstances? Explain. 3. Which solutions, if any, produced a negative slope? Was water moving in or out of the cell under these circumstances? Explain. 4. Does sucrose move in or out of the cell? Explain. 5. Examine the graph of the rate of pressure change vs. the sucrose concentration. Describe any trends in the data. 6. Use the graph to determine (estimate) the concentration of sucrose that would yield no change in pressure. Why is this biologically significant? 75 7. When wilted plants are watered, they tend to become rigid. Explain how this might happen. 8. Explain the strengths and weakness of this dialysis model with respect to animal and plant cells. 9. Discuss and explain potential reasons to account for variation in class average mass change at specific sucrose concentrations. 10. In the winter, people pour salt on roads to breakdown the ice. The runoff often leaves dead plants in its wake. Explain why plants die when exposed to salt. 11. Indicator solutions are used to test for various substances. What indicators are used to test for the presence of the following organic compounds? Simple carbohydrates _____________________ Starch _____________________________ Proteins________________________________ Lipids_____________________________ 76 Diffusion Through Membranes 12. Using the data from the table, answer the questions. Sample Data: Contents in Dialysis bag (20mL) 0.0 M Distilled H20 0.2 M Sucrose 0.4 M Sucrose 0.6 M Sucrose 0.8 M Sucrose 1.0 M Sucrose Percent Change in Mass 12.5 3.5 -4.0 -6.0 -14.0 -14.0 a. What is the molar concentration of the carrot cells? Show your work. b. Identify each of the bags (in the chart above) in the beakers below as isotonic, hypertonic, or hypotonic. Contents in Beaker Is the water in the Are the carrot cells beaker Isotonic, Isotonic, Hypertonic, or Hypertonic, or Hypotonic to the Hypotonic to the carrot cells water in the beaker 0.0 M Dist H20 0.2 M Sucrose 0.4 M Sucrose 0.6 M Sucrose 0.8 M Sucrose 1.0 M Sucrose 13. Predict the effect of increased and decreased initial temperature on rates of mass change for each of these different solution concentrations. 77 14. Predict the rates of pressure change if the dialysis tubing is placed in an insulated cup holding 1000 mL of 37°C water. Explain your reasoning. 15. Predict the rate of mass change if the dialyisis tubing were filled with 10 mL of 0.8 M sucrose solution and 5 mL of 1.0 M sodium chloride solution. Explain your reasoning. 78 Diffusion Through Membranes POST LAB ANALYSIS QUESTIONS (PART III) 16. Describe the trends in your lab group data and compare/contrast to the class’ data. Explain any differences. 17. Whether you used whole carrots or slices, explain how your data may have changed if you had used the other type. What would explain the differences? 18. What may happen to an animal cell if water moves into it? How does this differ from what would happen in a plant cell? 19. What factors affect water potential? 20. If a plant cell has a higher water potential than its surrounding environment and the pressure is equal to zero, will water move in or out of the cell? Explain why. 21. When you increase the concentration of a solute in a solution, the concentration gradient of water changes. Does the water increase its water potential or decrease its water potential? 79 80 81 82 83 84 85 86 88 Mitosis In 1858, Rudolf Virchow discovered that new cells arise only from previously existing cells. Cells can arise in two ways: mitosis and meiosis. Somatic (body) cells divide by mitosis followed by cytokinesis. Germ cells produce gametes by the process of meiosis. Plant cells grow by enlargement, essentially by taking up water. When they reach a certain size, they divide, forming two identical daughter cells via mitosis. The various parts of the cell are divided in such a way that the new daughter cell is identical to the parent cell. Mitosis is one part of the cell cycle. Figure 1: The Cell Cycle Mitosis is the division of the nucleus, and is therefore distinct from cell division, in which the cytoplasm is divided. In prokaryotes, the DNA is replicated before division. In eukaryotes, the DNA is part of the chromosomes. Division requires a specific method for replication, separation, and divided between the daughter cells. Mitosis, or nuclear division, ensures the equal division of the nuclear material between the daughter cells in eukaryotic organisms. During mitosis the chromosomes condense, and move to the center of the cell where they fully contract. They then split longitudinally into two identical halves that appear to be pulled to opposite poles of the cell by a series of microtubules. In these two genetically identical groups, the coiling of the chromosomes relaxes again, and they are reconstituted into the nuclei of the two daughter cells. It is a continuous process that can be divided into four major phases: prophase, metaphase, anaphase, and telophase. 89 Interphase: The chromatin, if visible at all, can only be seen as small grains or threads. Interphase is generally considered to be a “resting phase.” However, the cell is replicating the genetic material, preparing for mitosis. Mitosis Prophase: The beginning of mitosis is illustrated by the chromosomes gradually becoming visible. They start out as elongated threads that shorten and thicken. Chromosomes become more condensed and undergo spiral contractions, like a thin wire being turned into a coiled spring. This coiling involves the entire DNA–protein complex. Each chromosome is composed of two longitudinal halves, called chromatids, joined in a narrow area known as the centromere, where the chromatids are not coiled. The centromere, located on each chromosome, divides the chromosomes into two arms of varying lengths. As prophase progresses, the nucleoli grow smaller and finally disappear. Shortly after, in most cell types, the nuclear envelope breaks down, putting the contracted chromosomes into direct contact with the cytoplasm; this marks the end of prophase. Metaphase: The chromosomes, still doubled, become arranged so that each centromere is on the equatorial region of the spindle. Each chromosome is attracted to the spindle fibers by its centromere; often the arms of the chromosome point toward one of the two poles. Some of the spindle fibers pass from one pole to the other and have no chromosome attached. Anaphase: The chromatids separate from one another and become individual chromosomes. First, the centromere divides and the two daughter chromosomes move away from the equator toward opposite poles. Their centromeres, which are still attached to the spindle fiber, move first, and the arms drag behind. The two daughter chromosomes pull apart; the tips of the longer arms separate last. The spindle fibers attached to the chromosomes shorten as the chromatids divide and the chromosomes separate. The fibers appear to move, but in fact the microtubules are continuously formed at one end of the spindle fiber and disassembled at the other. In the process, it appears as if the spindle fibers were tugging the chromosomes toward the poles by their centromeres. By the end of anaphase, the two identical sets of chromosomes have separated and moved to opposite poles. Telophase: The separation is made final; the nuclear envelopes are organized around the two identical sets of chromosomes. The spindle apparatus disappears. Nucleoli also reform at this time. The chromosomes become increasingly indistinct, uncoiling to become slender threads again. Post Mitosis (Cell Division) Cytokinesis: As mitosis ends, cytokinesis begins, resulting in the formation of two daughter cells. The cleaved membrane slowly draws together, forming a narrow bridge, then separates the cell into two daughter cells. The cells now enter interphase. In order to investigate the process of mitosis, plant and animal tissues where cells are dividing rapidly must be examined. In animals, the most rapidly growing and dividing tissues are found in the embryonic stages of development. Although most animal tissues continue to undergo mitosis throughout the life cycle of the organism, they do so very slowly when compared to their embryos. Some animal cells, like most plant tissues, rarely replicate after the organism reaches maturity. 90 In plants, these tissues are primarily found in the tips of stems and roots. The root tip plants are exceptionally good places to look for cells undergoing mitosis. Plant root tips consist of several different zones where various developmental and functional processes of the root are performed. The primary region for the formation of new cells is the apical meristem. The root cap offers protection for the rest of the root, the region of elongation is the area where the bulk of cell growth occurs, and the region of maturation is where tissue differentiation occurs. OBJECTIVES In this experiment, you will • Examine and compare the phases of mitosis in animal and plants cells. • Determine the relative time cells spend in each phase of mitosis. • Follow the processes of mitosis in the life cycle of Sordaria. • Examine the arrangement of Sordaria ascospore microscopically to determine the frequency of crossing over. • Calculate the distance, in map units, between a specific gene and the chromosome centromere. MATERIALS whitefish mitosis slide onion mitosis slide compound microscope PROCEDURE Part A: Observing Mitosis in Plant and Animal Cells 1. Observe the prepared microscope slide of onion root tip mitosis, first at 100X, then 400X. Using the Plant Mitosis Chart as a guide, identify cells that represent each mitotic phase. 2. In the Analysis section, draw each phase of plant cell mitosis that you see. Write a brief description of each phase below each drawing. 3. Observe the prepared microscope slide of whitefish blastula. Using the Animal Mitosis Chart as a guide, identify each phase of animal cell mitosis. 4. In the Analysis section, draw each phase of plant or animal cell mitosis that you see. Write a brief description of each phase below each drawing. Part B: Relative Lengths of Phases of Mitosis 5. Examine at least three fields of view of the apical meristem of the onion root tip at 400X. In each view, count the number of cells in the various stages of mitosis. Record this data in Table 1. 6. Calculate the total number of cells counted and the percentage of total cells counted for each stage of mitosis. Record this data in Table 1. Record the percentages in Table 2, as well. 91 7. Assuming that it takes an average of 24 hours (1,440 minutes) for onion root tip cells to complete the cell cycle, calculate the amount of time cells spent in each phase of the cycle. Use the formula provided below. Enter your results in Table 1. Percent of Cells in Phase × 1,440 minutes = _________ minutes cell spent in phase ANALYSIS Stage: ___________ Description: ______ _________________ _________________ _________________ _________________ Stage: ___________ Description: ______ _________________ _________________ _________________ _________________ Stage: ___________ Description: ______ _________________ _________________ _________________ _________________ Stage: ___________ Description: ______ _________________ _________________ _________________ _________________ Stage: ___________ Description: ______ _________________ _________________ _________________ _________________ 92 Table 1 Stage # of cells in Field 1 # of cells in Field 2 # of cells in Field 3 Total # of cells % of Total # of cells Time of Each stage (min) Interphase Prophase Metaphase Anaphase Telophase Total number of cells counted __________ Table 2: Table 2 Percentage of cells in each stage of mitosis Stage % of Total # of cells Interphase Prophase Metaphase Anaphase Telophase Total QUESTIONS 1. Referring to the percentage of total cells counted in each phase of mitosis, determine which phase takes the longest for the cell to complete, and explain why. Sketch a pie graph of the percentage of cells in each phase to illustrate. Be sure to title your graph and include a key. 2. What is the relationship between the processes of mitosis and cytokinesis? 3. Describe the phase that is different between plant and animal cell mitosis. 4. Explain the difference between chromatin, chromosomes, and chromatid. 93 ANIMAL CELL MITOSIS Interphase Prophase Metaphase Anaphase Telophase Cytokinesis 94 PLANT CELL MITOSIS Interphase Prophase Metaphase Anaphase Telophase Cytokinesis 95 96 Meiosis Crossing Over during Meiosis in Sordaria Sordaria fimicola is an ascomycete fungus that can be used to demonstrate the results of crossing over during meiosis. Sordaria is a haploid organism for most of its life cycle. It becomes diploid only when the fusion of the mycelia (very small filaments) of two different strains results in the fusion of the two different types of haploid nuclei to form a diploid nucleus. The diploid nucleus must then undergo meiosis to resume its haploid state. Meiosis, followed by mitosis, in Sordaria results in the formation of eight haploid ascospores contained within a sac called an ascus (plural, asci). Many asci are contained within a fruiting body called a perithecium. When ascospores are mature the ascus ruptures, releasing the ascospores. Each ascospore can develop into a new haploid fungus. The life cycle of Sordaria fimicola is shown in Figure 1. Figure 1: Life Cycle To observe crossing over in Sordaria, one must make hybrids between wild-type and mutant strains of Sordaria. Wild-type (+) Sordaria have black ascospores. One mutant strain has tan spores (tn). When mycelia of these two different strains come together and undergo meiosis, the asci that develop will contain four black ascospores and four tan ascospores. The arrangement of the spores directly reflects whether or not crossing over has occurred. In Figure 2, no crossing over has occurred. Figure 3 shows the results of crossing over between the centromere of the chromosome and the gene for ascospore color. Figure 2: 97 Two homologous chromosomes line up at metaphase I of meiosis. The two chromatids of one chromosome each carry the gene for tan spore color (tn) and the two chromatids of the other chromosome carry the gene for wild-type spore color (+). The first meiotic division (MI) results in two cells each containing just one type of spore color gene (either tan or wild-type). Therefore, segregation of these genes has occurred at the first meiotic division (MI). The second meiotic division (MII) results in four cells, each with the haploid number of chromosomes (lN). A mitotic division simply duplicates these cells, resulting in 8 spores. They are arranged in the 4:4 pattern. In this example, crossing over has occurred in the region between the gene for spore color and the centromere. The homologous chromosomes separate during meiosis I. This time, the MI results in two cells, each containing both genes (1 tan, 1 wild-type); therefore, the genes for spore color have not yet segregated. Meiosis II (MII) results in segregation of the two types of genes for spore color. A mitotic division results in 8 spores arranged in the 2:2:2:2 or 2:4:2 pattern. Any one of these spore arrangements would indicate that crossing over has occurred between the gene for spore coat color and the centromere. Two strains of Sordaria (wild-type and tan mutant) have been inoculated on a plate of agar. Where the mycelia of the two strains meet (Figure 4), fruiting bodies called perithecia develop. Meiosis occurs within the perithecia during the formation of asci. A slide has been prepared of some perithecia (the black dots in figure 4). Procedure Using the 40x objective, view the 10 slides and locate a group of hybrid asci (those containing both tan and black ascospores). Count at least 10 hybrid asci on each and enter your data in Table 1. The frequency of crossing over appears to be governed largely by the distance between genes, or in this case, between the gene for spore coat color and the centromere. The probability of a crossover occurring between two particular genes on the same chromosome (linked genes) increases as the 98 distance between those genes becomes larger. The frequency of crossover, therefore, appears to be directly proportional to the distance between genes. A map unit is an arbitrary unit of measure used to describe relative distances between linked genes. The number of map units between two genes or between a gene and the centromere is equal to the percentage of recombinants. Customary units cannot be used because we cannot directly visualize genes with the light microscope. However, due to the relationship between distance and crossover frequency, we may use the map unit. 2:2:2:2 Asci Spores with crossovers 2:4:2 2:2:2:2 4:4 4:4 Here is another picture of spore formation. 99 Pre-Lab Questions 1. What type of fungus is Sodaria fimicola? 2. What are the following? ASCUS, ASCOSPORES, PERITHECIUM 3. Why are there 8 spores in an ascus? Table 1 Slide # Noncrossover Asci 4:4 Crossover Asci 2:2:2:2 OR 2:4:2 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 TOTAL 100 Analysis of Results 1. Using the data in Table 1, determine the distance between the gene for spore color and the centromere. Calculate the percent of crossovers by dividing the number of crossover asci (2:2:2:2 or 2:4:2) by the total number of asci x 100. To calculate the map distance, divide the percentage of crossover asci by 2. The percentage of crossover asci is divided by 2 because only half of the spores in each ascus are the result of a crossover event (Figure 3). Record your results in Table 2. Percent crossovers = crossover asci/ total asci X 100 Table 2 Number of 4:4 Number of Crossovers Total Asci %Asci Showing crossover Gene to Centromere Distance (map Units) 2. Draw a pair of chromosomes in MI and MII, and show how you would get a 2:4:2 arrangement of ascospores by crossing over. (Hint: refer to Figure 3). 3. Make a Venn diagram showing the similarities and differences between mitosis and meiosis. 101 102 Cell Respiration Cell respiration refers to the process of converting the chemical energy of organic molecules into a form immediately usable by organisms. Glucose may be oxidized completely if sufficient oxygen is available according to the following equation: C6H12O6 + 6O2(g) → 6 H2O + 6 CO2(g) + energy All organisms, including plants and animals, oxidize glucose for energy. Often, this energy is used to convert ADP and phosphate into ATP. Peas undergo cell respiration during germination. Using the CO2 Gas Sensor and O2 Gas Sensor, you will monitor the carbon dioxide produced and the oxygen consumed by peas during cell respiration. Both germinating and non-germinating peas will be tested. Additionally, cell respiration of germinating peas at different temperatures will be investigated. OBJECTIVES In this experiment, you will Study the effect of temperature on cell respiration. • Determine whether germinating peas and non-germinating peas respire. • Compare the rates of cell respiration in germinating and non-germinating peas. • The Oxygen Probe must always be UPRIGHT- when stored & when being used Figure 1 Adapted from Advanced Biology with Vernier and College Board Lab # 5 Cellular Respiration 103 MATERIALS LabQuest Vernier O2 Gas Sensor Vernier CO2 Gas Sensor 25 non-germinated peas 25 germinated peas BioChamber 250 (2 hole chambers) ice cubes two 100 mL beakers thermometer PROCEDURE 1. If your CO2 Gas Sensor has a switch, set it to the Low (0–10,000 ppm) setting. Connect the O2 Gas Sensor and the CO2 Gas Sensor to LabQuest. 2. Choose New from the File menu. If you have older sensors that do not auto-ID, manually set up the sensors. 3. Measure the room temperature using a thermometer and record the temperature in Table 1. 4. Obtain 25 germinated peas and blot them dry between two pieces of paper towel. 5. Place the germinated peas into the respiration chamber. 6. Place the O2 Gas Sensor into the BioChamber 250 as shown in Figure 1. Insert the sensor snugly. The O2 Gas Sensor should remain vertical throughout the experiment. Place the CO2 Gas Sensor into the neck of the BioChamber 250. 7. Wait two minutes, then start data collection. 8. When data collection has finished, remove the sensors from the respiration chamber. Place the peas in a 100 mL beaker filled with cold water and an ice cube. 9. Fill the respiration chamber with water and then empty it. Thoroughly dry the inside of the respiration chamber with a paper towel. 10. Perform a linear regression to calculate the rate of respiration. a. Choose Curve Fit from the Analyze menu and select CO2 Gas. b. Select Linear as the Fit Equation. The linear-regression statistics for these two data columns are displayed for the equation in the form c. Enter the absolute value of the slope, m, as the rate of respiration for the CO2 Gas Sensor in Table 2. d. Select OK. 11. Calculate the rate of respiration for the O2 Gas Sensor. a. Choose Curve Fit from the Analyze menu and select O2 Gas. b. Select Linear as the Fit Equation. The linear-regression statistics are displayed for the equation in the form Adapted from Advanced Biology with Vernier and College Board Lab # 5 Cellular Respiration 104 c. Enter the absolute value of the slope, m, as the rate of respiration for the O2 Gas Sensor in Table 2. d. Select OK. 12. Repeat Steps 5–11 substituting the germinated peas with non-germinated peas. In Step 8 place the non-germinated peas on a paper towel and not in the ice bath. Part II Germinated peas and Temperatures 13. Remove the peas from the cold water and gently blot them dry between two paper towels. 14. Repeat Steps 5–11 using the cold germinated peas. 15. Graph all of your data on one graph. DATA Table 1: Temperatures Condition Temperature (°C) Room Cold Table 2: Respiration Rates Peas O2 Rate of respiration (ppt/s) CO2 Rate of respiration (ppt/s) Germinating, room temperature Non-germinating, room temperature Germinating, cool temperature Table 3: Class Data Oxygen Peas Germinating, Room Temp NonGerminating, Room Temp. Germinating, Cold Temp G1 G2 G3 G4 G5 G6 G7 G8 G9 Adapted from Advanced Biology with Vernier and College Board Lab # 5 Cellular Respiration G10 Avg. 105 Table 4: Class Data Carbon Dioxide Peas Germinating, Room Temp NonGerminating, Room Temp. Germinating, Cold Temp G1 G2 G3 G4 G5 G6 G7 G8 G9 G10 Avg. QUESTIONS 1. Do you have evidence that cell respiration occurred in peas? Explain. 2. What is the effect of germination on the rate of cell respiration in peas? 3. What is the effect of temperature on the rate of cell respiration in peas? 4. Why do germinating peas undergo cell respiration? 5. Compare the class average Oxygen in all of the trials. Explain the significance of each. EXTENSIONS 1. Compare the respiration rate among various types of seeds. 2. Compare the respiration rate among seeds that have germinated for different time periods, such as 1, 3, and 5 days. 3. Compare the respiration rate among various types of small animals, such as insects or earthworms. Adapted from Advanced Biology with Vernier and College Board Lab # 5 Cellular Respiration 106 107 108 Plant Pigment Chromatography Paper chromatography is a technique used to separate and identify substances in a mixture based on the movement of the different substances up a piece of paper by capillary action. Pigments extracted from plant cells contain a variety of molecules, such as chlorophylls, beta carotene, and xanthophyll that can be separated using paper chromatography. A small sample of plant pigment placed on chromatography paper travels up the paper due to capillary action. Beta carotene is carried the furthest because it is highly soluble in the solvent and because it forms no hydrogen bonds with the chromatography paper fibers. Xanthophyll contains oxygen and does not travel quite as far with the solvent because it is less soluble than beta carotene and forms some hydrogen bonds with the paper. Chlorophylls are bound more tightly to the paper than the other two, so they travel the shortest distance. The ratio of the distance moved by a pigment to the distance moved by the solvent is a constant, Rf. Each type of molecule has its own Rf value. Rf = distance traveled by pigment distance traveled by solvent Chlorophyll a is the primary photosynthetic pigment in plants. A molecule of chlorophyll a is located at the reaction center of photosystems. Other chlorophyll a molecules, chlorophyll b, and the carotenoids (that is, carotenes and xanthophylls) capture light energy and transfer it to the chlorophyll a at the reaction center. Carotenoids also protect the photosynthetic system from the damaging effects of ultraviolet light. OBJECTIVES In this experiment, you will • • Separate plant pigments. Calculate the Rf values of the pigments. MATERIALS chromatography jar with lid chromatography paper spinach leaves Coin goggles ruler pencil scissors 10-15 ml chromatography solvent PROCEDURE Obtain and wear goggles! Caution: The solvent in this experiment is flammable and poisonous. Be sure there are no open flames in the lab during this experiment. Avoid inhaling fumes. Wear goggles at all times. Notify your teacher immediately if an accident occurs. 1. Obtain a chromatography jar that has 10-15 ml of solvent in the bottom. Keep the jar closed as much as possible because the solvent is volatile. 2. Obtain an 8-cm square piece of chromatography paper and one fresh spinach leaf. Adapted from Advanced Biology with Vernier 109 3. Make two pencil marks 1.5 cm from one edge of the chromatography paper as shown in the figure below. 4. Lay the leaf on the chromatography paper. Using the marks as a guide lay a ruler on top of the leaf so that the edge of the ruler is on the paper 1.5 cm from, and parallel to, the edge. 5. Using the ruler as a guide, roll a coin over the leaf so that you drive the leaf pigments into the paper in a straight line 1.5 cm from the edge of the paper. Repeat the procedure 10 times making sure to use a different part of the leaf each time. 6. Fold the chromatography paper in half vertically so that it will stand up by itself. Place the chromatography paper in the jar so that the end of the paper is in the solvent but the pigment streak itself is not in the solvent. Do not let the sides of the paper touch the sides of the jar. 7. Close the lid and do not disturb the jar. 8. Wait until the solvent is approximately 1 cm from the top of the paper. Remove the chromatography paper and mark the solvent front before it evaporates. Recap your jar. 9. Allow the paper to dry. Mark the bottom of each pigment band. Measure the distance each pigment moved from the starting line to the bottom of the pigment band. Record the distance that each of the pigments and the solvent moved, in millimeters in Table 1. Band 1 is the pigment band nearest the origin, etc. 10. Identify each of the bands and label them on the chromatography paper. • beta carotene: yellow to yellow orange • xanthophyll: yellow • chlorophyll a: bright green to blue green • chlorophyll b: yellow green to olive green 11. Cut your chromatogram along the fold line. Staple half of the chromatogram to the front of your lab sheet. Write your name on the back of the other half and give it to your teacher. The pigments from this half may be separated from each other, extracted from the paper, and analyzed. Adapted from Advanced Biology with Vernier 110 DATA Table 1 Band number Distance traveled (mm) Band color Identity 1 2 3 4 5* Distance solvent front moved = mm * The fifth band may not appear. PROCESSING THE DATA Calculate the Rf values and record in Table 2. Table 2 Molecule Rf beta carotene xanthophyll chlorophyll a chlorophyll b Adapted from Advanced Biology with Vernier 111 PRE LAB QUESTIONS 1. In this experiment we are separating pigments by paper chromatography. Other than chlorophyll a, what pigments might we find in the spinach leaves? 2. Why do you mark the chromatography paper with pencil, not pen? 3. Jessica didn’t read the instructions and allowed the liquid level to be above the baseline. Will she still get valid data? Explain. 4. Which pigment, chlorophyll a, chlorophyll b, and/or carotenoids, will travel the farthest on the chromatography paper? Explain. QUESTIONS 1. What factors are involved in the separation of the pigments? 2. Would you expect the Rf value to be different with a different solvent? Explain. 3. Why do the pigments become separated during the development of the chromatogram? 4. What type of chlorophyll does the reaction center contain? What are the roles of the other pigments? Adapted from Advanced Biology with Vernier 112 Photosynthesis The human eye responds to a certain range of wavelengths of electromagnetic radiation. We call radiation within this range “visible light.” The shorter the wavelength, the greater the energy of the radiation. Ultraviolet radiation, X-rays, and gamma rays possess shorter wavelengths and more energy than visible light. These high-energy radiations can harm living tissues. Electromagnetic radiations with lower energies (longer wavelengths) than visible light are called infrared radiation and radio waves. Plant cells contain pigments that absorb electromagnetic radiation of wavelengths within the visible range. The pigment molecules are part of complexes called photosystems, which are found in the chloroplasts of palisade mesophyll leaf cells. The process of photosynthesis involves the use of pigment molecules to absorb light energy which will be used to convert carbon dioxide and water into sugar, oxygen, and other organic compounds. This process is often summarized by the following reaction: 6 H2O + 6 CO2 + light energy → C6H12O6 + 6 O2 This process is an extremely complex one, occurring in two stages. The first stage, called the light reactions of photosynthesis, requires light energy. The products of the light reactions are then used to produce glucose from carbon dioxide and water. Because the reactions in the second stage do not require the direct use of light energy, they are called the light independent or dark reactions of photosynthesis. In the light reactions, electrons derived from water are “excited” (raised to higher energy levels) in several steps using photosystems I and II. In both steps, chlorophyll absorbs light energy that is used to excite the electrons. Normally, these electrons are passed to a cytochrome-containing electron transport chain. In the first photosystem, these electrons are used to generate ATP. In the second photosystem, excited electrons are used to produce the reduced coenzyme nicotinamide adenine dinucleotide phosphate (NADPH). Both ATP and NADPH are then used in the light independent reactions to produce glucose. In this experiment, a blue dye (2,6-dichlorophenol-indophenol, or DPIP) will be used to replace NADP+ in the light reactions. When the dye is oxidized, it is blue. When reduced, however, it turns colorless. Since DPIP replaces NADP+ in the light reactions, it will turn from blue to colorless when reduced during photosynthesis. In this activity, you will add an extract of chloroplasts from spinach leaves to a DPIP solution and incubate the mixture in the presence of light. As the DPIP is reduced and becomes colorless, the resultant decrease in light absorbance is measured over time. To measure the change in color more precisely, you will use a device called a Spectrophotometer (Vernier SpectroVis). Inside the spectrophotometer, there is a light bulb which can be made to shine a beam of light of just one wavelength through your sample tubes. (Remember that normal white light is a mixture of all the colors of the rainbow. Each of these colors is different because it has a different wavelength.) There is also a detector which will measure how much light passes through your sample. You will adjust the bulb to emit light that Adapted from Advanced Biology with Vernier 113 is absorbed best by the unreduced DPIP. The wavelength of this light is known as λmax (lambda max). At the beginning, when the DPIP is blue, it will absorb all the light and will not allow any to pass through. As the DPIP is reduced to DPIPH and becomes colorless, more and more light will pass through the sample. You will measure this change at different time intervals. The amount of light that passes through the sample is known as transmittance. The amount of light that is ‘caught’ by the molecules of DPIP is known as absorbance. When you use DPIP in this experiment, it will be part of a mixture. The other parts of the mixture are water, buffer, and chloroplasts. They also transmit and absorb light. If you want the spectrophotometer to read the concentration of just the DPIP, and not the other substances, you must adjust the meter so that it will ‘‘ignore’’ everything except the DPIP. You will do this by using a blank. A blank is a sample that contains all the substances in the experimental sample except the one you will be measuring. The blank is inserted into the spectrophotometer before any experimental readings are taken. When the blank is in the chamber, the meter will be adjusted to read 0% absorbance. In other words, the meter will ‘ignore’’ buffer, water, and chloroplasts. When an experimental sample is placed in the chamber, the meter will record only the amount of light absorbed by the DPIP. This experiment is designed to test the hypothesis that light and active chloroplasts are required for the light reactions of photosynthesis to occur. OBJECTIVES In this experiment, you will • Use a spectrophotometer to measure color changes due to photosynthesis. • Study the effect of light on photosynthesis. • Study the effect that the boiling of plant cells has on photosynthesis. • Compare the rates of photosynthesis for plants in different light conditions. Figure 1 MATERIALS LabQuest Vernier SpectroVis Adapted from Advanced Biology with Vernier two small test tubes 4 graduated transfer pipets (or syringes) 114 5 cuvettes with lids (test tubes) aluminum foil 100 watt floodlight Stopwatch 600 mL beaker (or fish bowl) 250 mL beaker (ice bath) distilled water 10 mL DPIP phosphate buffer solution vial with unboiled chloroplast suspension vial with boiled chloroplast suspension ice marker PROCEDURE 1. Obtain and wear goggles. 2. Your teacher will provide you with vials containing boiled and unboiled chloroplasts. 3. Fill the 250 mL beaker with ice and place the vials in the beaker. 4. Mark the five cuvette lids with with a BK (blank), a UD (unboiled/dark), a UL(unboiled/light), a BL (boiled/light) and a NL (no chloroplasts/light). 5. Cover all four sides and the bottom of the UD cuvette with aluminum foil. 6. Use the information in Table 1 to add the phosphate buffer, distilled H2O, and DPIP to each cuvette. Important: Do not add chloroplasts at this time. Note: You have four plastic transfer pipets for setting up the experiment. Keep track of them carefully and use them as directed, so that you will not cross-contaminate reagents. The first is to be used for the H2O and then later for the buffer solution, the second for DPIP, the third for unboiled chloroplasts suspension, and the fourth for boiled chloroplasts suspension. Be aware that the pipets have a 1-mL graduation mark at the top of the neck, near the bulb. Table 1 BK UD UL BL Blank (no DPIP) Unboiled Dark Unboiled Light Boiled Light NL No Chloroplasts Light Phosphate buffer 1 mL 1 mL 1 mL 1 mL 1 mL Distilled H2O 4 mL 3 mL 3 mL 3 mL 3 mL + 3 drops — 1 mL 1 mL 1 mL 1 mL 3 drops 3 drops 3 drops — — — — — 3 drops — DPIP Unboiled chloroplasts Boiled chloroplasts 7. Connect the spectrophotometer to LabQuest and choose New from the File menu. Tap Mode. From the dropdown menu select Selected Events then select OK. Tap on the red box and select Change Wavelength. Enter 605 into the wavelength box, put a check in the box to Adapted from Advanced Biology with Vernier 115 Report average of wavelength band, then select OK. (605 nm was selected because it is the λmax for DPIP). 8. Finish preparing the Blank cuvette by adding three drops of unboiled chloroplasts. (Be sure to always gently shake the vial to resuspend chloroplasts before removing sample.) Place the lid marked with BK on the cuvette and gently invert three times to mix. Note: All cuvettes should be wiped clean and dry on the outside with a tissue. Handle cuvettes only by the top edge of the ribbed sides. All solutions should be free of bubbles. 9. Calibrate the SpectroVis. a. Choose Calibrate from the Sensors menu. b. When the warm-up period is complete, place the Blank (BK) in the spectrometer. Make sure to align the cuvette so that the clear sides are facing the light source of the spectrometer. c. Tap Finish Calibration, and then select OK. 10. Obtain a 600 mL beaker filled with water and a flood lamp. Arrange the lamp and beaker as shown in figure 2. The beaker will act as a heat shield, protecting the chloroplasts from warming by the flood lamp. Do not turn on the lamp until Step 13. Figure 2 11. Finish preparing the cuvettes. Important: Perform the following steps as quickly as possible and proceed directly to Step 12. a. Cuvette UD: Add 3 drops of unboiled chloroplasts. Place the lid on the cuvette and gently mix; try not to introduce bubbles in the solution. Make sure that no light can penetrate the cuvette. b. Cuvette UL: Add 3 drops of unboiled chloroplasts. Place the lid on the cuvette and gently mix; try not to introduce bubbles in the solution. c. Cuvette BL: Add 3 drops of boiled chloroplasts. Place the lid on the cuvette and gently mix; try not to introduce bubbles in the solution. d. Cuvette NL: Do not add chloroplasts to this cuvette. Place the cuvettes in front of the lamp as shown in Figure 2. Mark the cuvettes’ positions so that they can be placed back in the same spots. 12. Take absorbance readings for each cuvette. Invert each cuvette two times to resuspend the chloroplast before taking a reading. If any air bubbles form, gently tap on the cuvette lid to Adapted from Advanced Biology with Vernier 116 knock them loose. a. Cuvette UD: Remove the cuvette from the foil sleeve and place it in the cuvette slot of the SpectroVis. Allow 10 seconds for the readings displayed in the meter to stabilize. Record the absorbance value in Table 2. Remove the cuvette and place it back into the foil sleeve. Place the cuvette in its original position in front of the lamp. b. Cuvette UL: Place the cuvette in the SpectroVis. Allow 10 seconds for the readings displayed in the meter to stabilize. Record the absorbance value in Table 2. Remove the cuvette and place it in its original position in front of the lamp. c. Cuvette BL: Place the cuvette in the SpectroVis. Allow 10 seconds for the readings displayed in the meter to stabilize. Record the absorbance value in Table 2. Place the cuvette in its original position in front of the lamp. d. Cuvette NL: Place the cuvette in the cuvette slot of the SpectroVis. Allow 10 seconds for the readings displayed in the meter to stabilize. Record the absorbance value in Table 2. Remove the cuvette and place it in its original position in front of the lamp. 13. Turn on the lamp and note the time. 14. Repeat Step 13 after 5, 10, 15, and 20 minutes have elapsed. PROCESSING THE DATA Calculate the rate of photosynthesis for each of the three cuvettes tested by performing a linear regression on each of the data sets. 1. Prepare LabQuest for data entry. a. Disconnect the SpectroVis and choose New from the File menu to prepare the program for manual entry. b. Tap Table to display the data table. c. Tap Run 1 to change the name of the table to Absorbance. d. Tap X to rename the column. e. Enter the Name (Time) and Units (min). Select OK. f. Tap Y to rename the column. g. Enter the Name (Unboiled/Dark), leave the Units field blank, and select 3 decimal places. Select OK. h. Tap Table and select New Manual Column. i. Enter the Name (Unboiled/Light), leave the Units field blank, and select 3 decimal places. Select OK. j. Repeat steps h-i to add columns for (Boiled/Light) and (No Chloroplast/Light). 2. Enter the absorbance and time data pairs from Table 1. a. Tap the first cell in the Time column and enter the 0 for the initial time at which data was taken. Adapted from Advanced Biology with Vernier 117 b. Move to the first cell in the Unboiled/Dark column and enter the initial absorbance value from the Unboiled/Dark column of Table 1. c. Continue to enter the data pairs using the same process until you have entered the 5 time and absorbance data pairs for your data in Table 1. d. When all the data has been entered, tap Graph to view a graph of absorbance vs. time. 3. Perform a linear regression to calculate the rate of photosynthetic activity. a. Choose Curve Fit from the Analyze menu. b. Select the first set of data you wish to analyze. c. Select Linear as the Fit Equation. The linear-regression statistics for these two data columns are displayed for the equation in the form y = mx + b where x is concentration, y is absorbance, m is the slope, and b is the y-intercept. c. Enter the absolute value of the slope, m, as the rate of photosynthetic activity in Table 2. d. Select OK. 4. Repeat Step 3 of Processing the Data for the rest of your data sets. DATA Table 2 – Absorbance Readings Time (min) Table 3 - Rates UD UL BL NL unboiled dark unboiled light boiled light no chloroplast light Chloroplast 0 Unboiled/Dark 5 Unboiled/Light 10 Boiled/Light 15 None/Light Rate of photosynthesis 20 Adapted from Advanced Biology with Vernier 118 PRE LAB QUESTIONS 1. How is red light different from green light? 2. Which has more energy, short or long electromagnetic waves? 3. If DPIP is a dark blue color, has light been absorbed by the chloroplast? Explain. 4. Which instrument will be used to measure the absorbance of light so that we can measure the amount of photosynthesis occurring? 5. Do you expect to see more or less absorbance of light if photosynthesis is actually occurring? 6. Why must you use a blank when you make measurements with a SpectroVis? 7. What is the purpose of the water container in step 10? 8. Which cuvette do you expect to end up with the lighter color, the one that has boiled chloroplasts or the one with unboiled chloroplasts? Explain. Adapted from Advanced Biology with Vernier 119 QUESTIONS: 1. What is the function of DPIP in this experiment? 2. What molecule found in chloroplasts does DPIP “replace” in the experiment? 3. What is the source of the electrons that will reduce DPIP? 4. What was measured with the SpectroVis in this experiment? 5. What is the effect of darkness on the reduction of DPIP? Explain. Adapted from Advanced Biology with Vernier 120 6. What is the effect of boiling the chloroplasts on the subsequent reduction of DPIP? Explain. 7. Identity the function of each of the cuvettes: BK: _________________________________________________________________ _ _________________________________________________________________ _ UD: _________________________________________________________________ _ _________________________________________________________________ _ UL: _________________________________________________________________ _ _________________________________________________________________ _ BL: _________________________________________________________________ _ _________________________________________________________________ _ NL: _________________________________________________________________ _ _________________________________________________________________ _ Adapted from Advanced Biology with Vernier 121 122 DNA Detectives or “Who Dunnit?” Introduction: Many of the revolutionary changes that have occurred in biology over the past fifteen years can be attributed to the ability to manipulate DNA in defined ways. The principal tools for the recombinant DNA technology are enzymes that can “cut and paste” DNA. Restriction enzymes are the “chemical scissors” of the molecular biologist; these enzymes cut DNA at specific nucleotide sequences. A sample of someone’s DNA, incubated with restriction enzymes, is reduced to millions of DNA fragments of varying sizes. A DNA sample from a different person would have a different nucleotide sequence and would thus be enzymatically “chopped up” into a very different collection of fragments. Because no two people (except identical twins) have exactly the same DNA, a person’s DNA fingerprint is unique and can be used for purposes of identification. We have been asked to apply DNA fingerprinting to determine which suspect should be charged with a crime perpetrated in our city. CONDUCTING ELECTROPHORESIS: BACKGROUND INFORMATION DNA is made up of a series of base pairs (guanine-cytosine, adenine-thymine, cytosine-guanine, thymine-adenine). G-C A-T C-G T-A Every individual has a unique series of base pairs in their DNA. The DNA samples used in this lab have been treated with restriction enzymes which seek out specific DNA base pair (bp) sequences and cut the DNA at that point. Since the DNA samples were all different, they were all cut at different spots which resulted in different sized fragments of DNA for each sample. ATCCTGCCGGAAGTCCGATCCGGTA TAGGACGGCCTTCAGGCTAGGCCAT The number of fragments and the sizes of the fragments depend on the restriction enzyme used and the size of the original DNA molecule. Restriction enzymes are microbial products, and their names are derived from the names of the organisms in which they were found. There are currently about 2500 restriction enzymes known, with 200 different recognition sequences. It is believed that the native function of enzymes was to digest foreign DNA, in other words, to protect the microorganism from invading viral DNA. Specific restriction enzymes may leave blunt ends on the DNA while others leave “sticky ends” where one strand of the DNA overhangs the other. Sticky ends are useful in recombinant technology. A new genetic characteristic can be transferred from organism to another by joining the sticky ends of two different strands of DNA. In order to determine what the DNA fragment sizes are, it is necessary to: (1) separate the fragments by size; (2) have some way to visualize the DNA; and (3) have a standard to which the fragments can be compared. The first is accomplished by separating the DNA using agarose gel 123 electrophoresis. The term ‘electrophoresis’ literally means “to carry with electricity.” It is a technique for separating and analyzing mixtures of charged molecules. When placed in an electric field, pieces of DNA (because they are ionized and negatively charged) migrate toward the positive electrode (anode); small pieces of DNA experience less resistance and move faster (farther) than larger pieces. It is necessary to add a matrix such as agarose or acrylamide to act as a sieve and separate the DNA molecules based on their size. The choice of matrix, agarose or acrylamide, is determined by the sizes of the molecules to be separated. Acrylamide is used primarily to separate proteins and small DNA molecules (under 1000 base pairs). Agarose is the matrix used to separate most DNA molecules. Agarose is a polysaccharide (from algae) that can be dissolved in hot water. As the agarose solution cools, it solidifies to form a matrix of gelatin-like consistency. The matrix contains pores through which the DNA molecules must pass. The size of the pores, and hence the sizes of the DNA molecules that can be separated on the gel, is determined by the concentration of the agarose solution. For example, large DNA molecules (>10,000 base pairs) can best be separated on a 0.3% agarose gels (e.g., larger pores), whereas small DNA molecules (100-3000 base pairs) would separate with better resolution on a 2.0% agarose gel (e.g., smaller pores). In the experiments in this kit, 0.9% agarose gels will be used to separate the DNA molecules. As these 0.9% gels are prepared, a comb is placed in the gel at the end closest to the cathode (negative electrode). After the agarose solution has solidified, the comb can be removed, leaving small holes or wells in the gel into which the samples will be loaded. The DNA samples are mixed with a loading buffer that contains glycerol and a tracking dye. The glycerol adds density to the samples, assuring that they will stay in the wells when loaded. The tracking dye usually contains a dye like bromphenol blue, a small molecule that migrates through the gel at a position approximately equivalent to a DNA fragment of 300 base pairs, or Orange G, which migrates through the gel at a position approximately equivalent to a DNA fragment of 50 base pairs. The dyes serve two functions. They makes it easier to see the samples while the wells are being loaded and, since the dye can be seen as it migrates through the gel, it can be used to estimate how far the DNA has migrated in the gel. When it is time to load and run the gel, the gel is covered in buffer, the comb carefully removed, and the samples loaded into the wells. A standard solution consisting of DNA fragments of known sizes is loaded into an adjacent well. The lid is placed on the gel box, the gel box is connected to a power supply, and an electrical current is passed through the gel. The DNA molecules immediately begin to migrate toward the anode, with smaller molecules migrating more rapidly than larger DNA molecules. It is necessary to have some method for visualizing the DNA in the agarose gel. In the following procedures, methylene blue is used as a post-stain for DNA. The DNA bands appear blue on a clear background and the migration of the fragments can be measured. A DNA ladder is a mixture of DNA fragments of known lengths. Using the data from the DNA fragments of known sizes, a standard curve can be constructed and used to calculate the sizes of unknown DNA fragments (the samples from the crime scene and suspects.) 124 Who Dunnit? A murder has been committed, and police discover evidence of a struggle and blood traces at the scene of the crime. Ian, a UPS delivery man is found dead in his truck on 221 just west of Forest Middle School. Autopsy has shown that Ian was strangled to death but there is blood on the scene. Packages are missing from the truck, and no witnesses an be found. Suspects X, Y, and Z are arrested and will go through DNA tests to determine if they were at the scene of the crime. All of the suspects proclaim their innocence adamantly, and want to see their lawyers. At their indictments, it is learned that 1. Suspect X - Bob Smith is a man in his middle thirties with prior convictions for armed robbery. Bob was apprehended shortly after the murder in Bedford driving recklessly on an expired license. No contraband was found in his possession but his hands are cut in several places. He says it’s because he works construction. 2. Suspect Y - Jim Dale is a man in his late forties. He is suspected of being romantically involved with Ian’s wife, Pam. Unexplained scratches were found on the back of his neck. 3. Suspect Z - Pam, wife of Ian. She says she was with Jim the entire day. Several cuts on both hands are suspicious. She claims she got them while picking blackberries with Ian. You are the lab worker who has been handed the DNA samples from the three suspects involved plus the DNA from the blood at the crime scene. Using molecular biology techniques, your job is to determine which of the suspects might have been at the crime scene. The court awaits your findings. Purpose: To prepare and analyze a DNA fingerprint, the student will: 1. 2. 3. 4. Prepare and load an agarose gel with enzyme cut DNA samples. Conduct gel electrophoresis to sort out the DNA fragments in the samples. Stain the gel to visualize the DNA fragments. Analyze the resulting banding pattern or “DNA fingerprint” to solve a crime. Materials: Electrophoresis chamber casting tray comb agarose power supply plastic tray for staining and storing gel DNA from suspects and crime scene (pre-cut) micropipette and pipette tips electrophoresis buffer [1X SB] racks for 1.5 ml microcentrifuge tubes 1.5 ml microcentrifuge tubes 1X staining solution (Methylene Blue) gloves light box plastic wrap 125 mL Erlenmeyer flask scoopula weighing boat balance thermometer practice pipetting station & dye parafilm plastic wrap and transparency marker Procedures: 125 Preparing the gel 1. Prepare the casting tray by placing it into the electrophoresis chamber and inserting the metal buffer dams at each end of the tray. Insert the comb into the tray so that it is nearest the black electrode. 2. Measure out 30 mL of 1X SB buffer solution and pour it into a 125 mL flask. 3. Mass out 0.27 g of agarose powder into a weighing boat. Add it to the flask with the buffer. DO NOT SWIRL the solution, as the undissolved agarose will stick to the sides of the flask. 4. Mass the flask with its contents. Record the mass on the flask’s label along with your name. 5. Heat the solution in a microwave oven for 1 minute to dissolve the agarose. a. Do not seal the container. Watch carefully that the solution does not boil over. b. When the hot agarose solution is removed from the microwave, it may be superheated. Carefully remove the flask from the microwave by holding onto the neck of the flask pointing the flask away from yourself and others, swirl gently. The superheated solution may bubble briefly at this point. (Be careful, as it may boil over, out of the flask) c. As the agarose dissolves, the solution will become clear. Swirl the flask to be certain that all the agarose is dissolved. If it is not, you will see little clear flecks. Hold the flask up to the light and examine the solution carefully to be sure that the agarose is all dissolved. If not completely dissolved place flask back in the microwave and heat for a short time. 6. Slightly cool the flask containing dissolved agarose then place it on the balance and add distilled water to bring the mass back up to the original mass marked on your flask. Some of the volume will be lost to evaporation during the process of heating and must be replaced to maintain the proper agarose concentration. 7. Place parafilm over the mouth of the flask to prevent further evaporation while cooling. 8. Note: Use a thermometer to check the temperature of the agarose! If the agarose is hotter than 55 – 60oC when the gel is poured, the gel tray can be warped by the heat. Be Careful! Carefully pour the agarose into the casting tray. DO NOT jar or move the casting tray as the gel solidifies. As the agarose polymerizes (about 10 min), it changes from clear to slightly opaque. 126 9. After gel has set, carefully remove the comb and casting gates. 10. Pour enough buffer into the gel box so that the gel is completely covered, with no ‘dimpling’ above the wells. Loading and Running the Gels 11. Load entire contents (10ul) of each sample tube into separate wells in the gel. Be sure the micro-pipette tip is below the surface of the buffer and just above the center of each well that you load. CHANGE PIPET TIPS BETWEEN SAMPLES TO AVOID CONTAMINATION! Leaving an empty lane on both sides, load in the order shown below: X Yellow tube Green tube Blue tube Red tube Clear tube Y Z - Suspect X - Suspect Y - Suspect Z -E -L E L = Bob Smith, former thief = Jim Dale, boyfriend = Pam, wife of victim = evidence DNA found at crime scene = ladder DNA (standardized control sample) 12. Once the wells are loaded, put the top on the gel box and connect it to the power supply (red to read, black to black.) Plug in the power supply and turn the unit to the desired voltage (check with teacher for voltage settings). Check the electrodes to be sure that bubbles are rising from the wires. If you don’t see bubbles, check all your connections. 13. Run until loading dye nears the bottom of the gel. At this point the current may be shut off and the leads (wires) disconnected. Staining and Viewing the Gel 14. Remove the casting tray from the gel box. CAREFULLY slide your gel off the casting tray into its plastic container. 15. Wearing gloves, pour the 1X methylene blue staining solution into the plastic container and allow it to sit for 15-20 minutes, rocking the container periodically. 16. To destain your gel, pour the stain carefully back into the beaker (do not throw away) and gently rinse your gel with water for 5 minutes. You may need to let your gel soak in several changes of water to increase contrast. DO NOT use large volumes of water, the water should just cover the gel. It is better to use small volumes of water and change it frequently than to flood the gel in a large volume! 17. Place a piece of plastic wrap on your light box and examine your stained, rinsed gel by placing it on the plastic wrap. Gently place a transparency over your gel and trace the bands with a permanent marker. 127 18. Store your gel in a labeled plastic bag in the refrigerator. Upon completion of the lab: dispose of designated materials in the appropriate places. Gently rinse gel boxes in water (do not scrub or wipe inside the box to dry it) leave equipment as you found it. check that your workstation is in order. wash your hands. Analysis: Compare the fingerprints of all the suspects in this case to the profile of the DNA isolated from the blood droplets at the crime scene. By comparing the banding patterns of the DNA samples, you should be able to determine who the murderer was. Which suspect’s blood was found at the site of the murder? Unfortunately, most courts will not accept your preliminary results as being conclusive and will expect a more detailed analysis. By calculating the size of the fragments from different samples, it is possible to more definitively determine “guilt”. 1. Look at the lane containing the 1 kb (kilobase) DNA ladder. To figure out which band is which, find the two bands that represent 1650 and 2000 base pairs (bp). These two bands are separated from the other bands, and rather easy to find. 2. Find these two bands on the stained gel and measure their migration from their point of origin in the gel. Measure from the bottom of the well to the foremost edge of the stained band. Be certain to measure each from the same point, e.g., from the bottom of the well each time, not the bottom one time and the top of the well the next. Record the base pair size of the band and its migration distance (in mm) on your data sheet. 3. Working up (toward larger DNA fragments) and down (toward smaller DNA fragments) from the 1650 and 2000 bp bands, measure and record the migration of the other bands in the DNA ladder. Note: The large bands will be too close together to be measured accurately, and the 128 smaller bands may have migrated off the bottom of the gel. Remember, if you have run the gel until the dye has reached the bottom of the gel, then anything smaller than dye about 400 bp will have run off the bottom of the gel. 4. Measure the migration of the bands in the experimental lanes and record the migration distances on your data sheet. Graphing – Method One - Paper 5. Create a standard curve using the data from the 1 kb DNA ladder. Graph the migration distance of the DNA fragments (x-axis) against the size of the DNA fragments (y-axis) on semi-log graph paper. 6. Draw a straight “line of best fit” which comes as close as possible to each point. 7. To determine the size of an enzyme-digested DNA fragment, find where the migration distance of the DNA fragment intersects the standard curve. Draw a line from this point to the y-axis. Where this line meets the y-axis is the size of the fragment. Record the size of the fragments on your data sheet. Graphing – Method Two – TI-83 8. Create a standard curve using the data from the 1 kb DNA ladder. 9. To clear your calculator of old information: press 2nd, MEM, select 4:ClrAllLists, and press ENTER, ENTER press Y=, then CLEAR for each entry press 2nd, STATPLOT, then 4:PLOTSOFF, ENTER 10. On your calculator select STAT, EDIT, then press ENTER 11. Enter the migration distances from your ladder into the L1 column 12. Enter the corresponding DNA fragment sizes (bp) into the L2 column 13. Press 2nd, STAT PLOT, and select Plot 1, ENTER 14. Select ON and press ENTER 15. Select scatter plot, Xlist: L1, Ylist: L2, and press GRAPH 16. To fit your graph to your data press ZOOM, select 9:ZoomStat, and press ENTER. You should see a graph of your data points. 17. To draw a regression curve to fit your data points, press STAT, select CALC, 0:ExpReg, and press ENTER 18. To tell the calculator where the data is that you want analyzed, press 2nd L1,2nd L2 then press ENTER 129 19. To tell the calculator to graph this curve, press Y=, select Y1=, press VARS, select 5:Statistics, select EQ, and press ENTER (make sure all other Y equations are deleted) 20. Press GRAPH. You should see a graph of your data points with the curve of best fit. 21. To use this graph to determine the sizes of an enzyme-digested DNA fragment, press 2nd, CALC, then select 1:Value, and press ENTER 22. Enter the migration distance of a DNA band and press ENTER. The Y value showing on the screen will be the size of the DNA fragment (in bp). Record this information in your data table. 23. Repeat steps 20-21 for the rest of the DNA fragments. 24. Using your calculated bp values, determine which suspect should be charged with the crime. 130 DATA TABLES 1 kb DNA ladder Fragment size (in bp) 12,000 Migration distance (mm) DNA sample: Suspect X Migration Distance Calculated Size (bp) 11.000 8,800 8,200 7,000 5,000 2000 1650 DNA sample: Suspect Y 1000 850 650 Migration Distance Calculated Size (bp) 500 400 300 Use these bands for orientation. DNA sample: Evidence Migration Calculated Distance Size (bp) DNA sample: Suspect Z Migration Calculated Distance Size (bp) 131 Prelab Questions for DNA Gel Electrophoresis 1. What is the purpose of electrophoresis? 2. Towards which electrode does DNA move? Why? 3. What function do restriction enzymes serve in bacterial cells? 4. Why is the DNA in this experiment cut with restriction enzymes? 5. What is agarose? 6. What function does the agarose serve? 7. Why is a comb inserted into the gel before it solidifies? 8. Why is glycerol added to the DNA samples? 9. How can you tell the gel is solidified and ready? 10. Which DNA molecules move faster through the gel? 11. What is the purpose of the Methylene Blue? 12. Why must the gel be destained? 13. What is a DNA ladder? 132 Lab Questions 1. Restriction enzymes are primarily isolated from bacteria. Why would bacteria have enzymes that cut DNA? 2. Discuss how each of the following factors would affect the results of electrophoresis: a. Voltage used: b. Running time: c. Amount of DNA used: d. Reversal of polarity: 3. Two small restriction fragments of nearly the same base pair size appear as a single band, even when the sample is run to the very end of the gel. What could be done to resolve the fragments? 4. A certain restriction enzyme digest results in DNA fragments of the following sizes: 4,000 bp, 2,400 bp, 2,000 bp, 400 bp. Sketch the resulting separation by electrophoresis. Show starting point, positive and negative electrodes, and the resulting bands. 5. How can a mutation that alters a recognition site be detected by gel electrophoresis? 6. Restriction enzymes make one of two types of cuts in DNA being digested. Some of these enzymes produce sticky ends at the cut site while others produce blunt cuts. What are sticky ends and what makes them important to recombinant DNA studies? 7. Who committed the crime? Justify your answer using your data. 133 134 BACKGROUND Advanced Placement (AP) is a registered trademark of the College Entrance Examination Board. The materials provided in this lab activity have been prepared by WARD’S according to the specifications outlined in the AP Laboratory Manual, Edition D. To perform the investigation, you may either follow the directions in the AP manual or, if one is not available, you may follow the directions in this guide. DID YOU KNOW? Transformation was discovered in the late 1920s by Fred Griffith, an English medical officer, while he was studying the bacteria responsible for a pneumonia epidemic in London. The ability to exchange genes within a population is a nearly universal attribute of all living things. Among prokaryotes, there is no known case where genetic exchange is an obligatory step (as it often is in eukaryotes) in the completion of an organism’s life cycle. Rather, genetic exchange in prokaryotes seems to be an occasional process that occurs through three different mechanisms in various prokaryotes. These three mechanisms are transformation, transduction, and conjugation. In transformation, DNA is released from a cell into the surrounding medium. Recipient cells are then able to incorporate it into themselves from the medium. Transduction occurs when a phage viron attaches to a bacterial cell and transfers some or all of its DNA into the bacterium. Conjugation is controlled by plasmid-borne genes and occurs between cells that are in direct contact with one another. Usually only the plasmid itself is transferred, although sometimes chromosomal genes can be transferred as well. Although the existence of plasmids was inferred from genetic studies in the 1950s, it has only been during recent decades, with the advent of more accurate means of detection, that the impact of plasmids on the biology and ecology of prokaryotes has been fully appreciated. Plasmids are circular molecules of double-stranded DNA and generally function as small chromosomes. They are self-replicating and can encode for a variety of cellular functions. However, unlike chromosomes, they are dispensable. The types of functions they encode only benefit the cell in a limited set of environments, and none are known to encode for essential cellular functions. Many, but not all, bacteria may contain anywhere from one to several dozen plasmids and although they are capable of autonomous replication, the number of plasmids remains fairly constant from one generation to the next. These bits of DNA vary in size from a few to several hundred Kb (kilobase) pairs in length. Many plasmids, called R factors, carry genes that confer resistance to antibiotics on the host cell. First discovered in 1955, R factors have spread rapidly among pathogenic bacteria in recent years, profoundly affecting medical science by causing many strains of pathogenic bacteria to be highly resistant to antibiotics. The number of inhibitory substances for R-mediated resistance has grown to almost all antibiotics, many other chemotherapeutic agents, and a variety of heavy metals. The mechanisms of resistance conferred by these genes tend to be different from those that are chromosomally determined. Plasmid genes often encode enzymes that chemically inactivate the drug or eliminate it from the cell by active transport. In contrast, chromosomal mutations usually modify the cellular target of the drug, rendering the cell resistant to the drug’s action. Call WARD’S at 1-800-962-2660 for Technical Assistance 4 135 The first mechanism of bacterial genetic exchange to be discovered was transformation. In 1928, a now-famous experiment demonstrated that injecting mice with an non-pathogenic (not capable of causing disease) strain of Streptococcus pneumoniae, together with heat-killed cells of a pathogenic (disease-causing) strain killed mice, while injecting these strains separately did not. This and subsequent experiments established that the surviving cells were recombinant, meaning that they exhibited certain properties (including the ability to cause disease) that were typical of the killed cells and others that were typical of the non-pathogenic culture. A genetic exchange of the DNA dissolved in the external medium had occurred between the dead cells and the live ones. At the time, it was thought that a particular substance, a “transforming principle”, caused the exchange to take place. Thus the word “transformation” came to be used to describe genetic exchange among prokaryotes. When cells are able to be transformed by DNA in their environments they are called “competent”. In a significant number of bacteria, entry into a competent state is encoded by chromosomal genes and signaled by certain environmental conditions. Such bacteria are said to be capable of undergoing natural transformation. Many other bacteria do not become competent under ordinary conditions but can be made competent by exposing them to a variety of artificial treatments, such as exposure to high concentrations of divalent cations. E. coli cells, which do not possess a natural system for transformation, are capable of being artificially transformed. They become competent only after the cultured cells are exposed to calcium chloride solution. These newly-competent cells are now receptive to an insertion of foreign DNA contained in a plasmid. 5 © 2005 WARD’S Natural Science Establishment, Inc. All Rights Reserved 136 MATERIALS MATERIALS NEEDED PER GROUP 2 2 2 1 2 4 1 1 Luria agar plates Luria agar plates with ampicillin Microcentrifuge tubes Inoculating loop Bacti-spreaders Sterile graduated pipets Rubber pipet bulb Capillary micropipet DID YOU KNOW? Streptococcus pneumoniae infections cause 3,000 cases of meningitis, 50,000 blood infections, and 100,000 150,000 hospitalizations for pneumonia each year. SHARED MATERIALS Calcium chloride Luria broth Plasmid pUC8 Waterbath Starter plate of E. coli PROCEDURE Figure 1 NOTE Prior to conducting the experiment, make sure all materials are present and ready to use. A 42ºC waterbath should be available and the calcium chloride should be in an ice bath and kept cold throughout the experiment. .7 1. Obtain two microcentrifuge tubes and mark one tube “+”, the other “–”. The “+” tube will have the plasmid added to it. 2. Using a sterile pipet, add 0.25 ml (250 µl) ice cold calcium chloride to each tube (Figure 1). 3. Obtain a starter plate. Use a sterile inoculating loop to transfer a large colony of bacteria from the starter plate to each tube of cold calcium chloride. Be sure not to transfer any agar to the tube. .8 .9 4. To remove the bacteria from the transfer loop, place the loop into the calcium chloride and twirl rapidly. Dispose of the loop according to your instructor. NOTE Gently tapping the loop against the side of the tube may help dislodge the bacteria. 9 © 2005 WARD’S Natural Science Establishment, Inc. All Rights Reserved 137 5. Using the provided capillary micropipets and plungers, add 10 µl (Figure 2) of the plasmid pUC8 solution, with the antibiotic resistance gene to the “+” tube. Figure 2 Plunger 6. Gently tap the tube with your finger to mix the plasmid into the solution. 7. Incubate both tubes on ice for 15 minutes. 8. While the tubes are incubating, obtain two Luria agar plates and two Luria agar plates with ampicillin. Label one Luria agar plate “+”, the other “–”. Do the same for the Luria agar plates with ampicillin. Be sure to label all four plates with your group name. NOTE Pipet Both time and temperature are critical in the following heat-shock protocol. Be sure your waterbath is at 42ºC and do not exceed 90 seconds in the waterbath. 9. The bacterial cells must be heat shocked to allow the plasmid to enter the cells. Remove the tubes from ice and immediately place in a 42°C hot waterbath for 60 to 90 seconds. Figure 3 .7 10. Remove the tubes from the 42ºC waterbath and immediately place on ice for two minutes. 11. Remove the tubes from the ice bath and add 0.25 ml (250 µl) of room temperature Luria broth to each tube with a sterile disposable pipet. Gently tap the tube with your finger to mix the solution. The tubes may now be kept at room temperature. 12. Add 0.1 ml (100 µl) (Figure 3) of the “+” solution to the two “+” plates with a sterile disposable pipet. Add 0.1 ml (100 µl) of the “–” solution to the two “–” plates with a different sterile disposable pipet. .8 13. Using a sterile Bacti-spreader, spread the cells over the entire surface of the Luria agar “-“ plate. Then, using the same Bactispreader, spread the liquid on the Luria agar w/ampicillin “-“ plate. .9 14. Using a new Bacti-spreader, repeat the procedure for both of the “+” plates. Spread the liquid on the Luria agar “+” plate first followed by the Luria agar w/ampicillin “+” plate. Dispose of the Bacti-spreaders according to your instructor. 15. Let the plates sit for five minutes to absorb the liquid. Place the plates in a 37°C incubator, inverted, overnight. 16. The next day, remove the plates from the incubator. Count and record the number of colonies on each plate. If the bacteria has grown over the entire surface so that individual colonies cannot Call WARD’S at 1-800-962-2660 for Technical Assistance 10 138 Analysis Luria agar(+) __________________ Luria agar (-)_______________________ Luria agar w/ampicillin(+)_____________ Luria agar w/ampicillin (-)______________ 1. Based on your experimental results, did transformation occur? Why or why not? 2. What other methods can be used to verify that transformation occurred? Explain. 3. Transformation is one type of genetic exchange among bacteria. Name and explain another type of genetic exchange. 4. Explain the four plates and the results. Provide an explanation of each plate and the results. 5. You repeat the experiment and obtain the results below. Explain what did or did not occur. 139 140 Chi Square (X 2 ) Modeling Using M & M’s Introduction: The Chi Square test (X2) is often used in science to test if data you observe from an experiment his the same as the data that you would predict from the experiment. Calculating X2 values allow you to determine if test results can be attributed to randomness or not. If the data differs greatly and it is not due to randomness, other factors must be influencing your results. This investigation will help you to use the Chi Square test by allowing you to practice it with a population of familiar objects, M & M candies. Objectives: Before you start this investigation, you should be able to: • Determine the degrees of freedom (df) for an investigation; • Calculate the X2 value for a given set of data; • Use the critical values table to determine if the calculated value is equal to or less than the critical value; • Determine if the Chi Square value exceeds the critical value and if the null hypothesis is accepted or rejected. Biologists generally accept p = 0.05 as the cutoff for accepting or rejecting a hypothesis. If the difference between your observed data and your expected data would occur due to chance alone fewer than 1 time in 20 (p = 0.05) then the acceptability of your hypothesis may be questioned. Biologists consider a p value of 0.05 or less to be a “statistically significant” difference. Procedure: 1. Record the different colors (classes) of M & M’s in Table 1 and Table 2. 2. Count the number of each color of candy and record the number in Table 1 under “Number Observed.” 3. Calculate the number of each color expected in Table 1 and record under “Number Expected.” HINT: You must count all the colors and add the total number of M & M’s before you can calculate the number expected of each color. Table 1 Color of Candy Number Observed (o) Percentage Expected Number Expected (e) (Total num ber of all pieces of candy x percentage expected) Total # Candies = 4. Record the numbers expected and the numbers observed in Table 2. 5. Complete the calculations and determine the Chi Square value. Table 2 Classes (Colors) Expected (e) Observed (o) o – e (o – e) 2 (o – e) 2 e 141 Degrees of freedom = (number of classes – 1) ∑= Analysis Questions: 1. What is the X2 value for your data? 2. What is the critical value for your data? 3. Given the critical value (p = 0.05), is the null hypothesis accepted or rejected? Explain why or why not. 4. If the null hypothesis is rejected, propose an alternative hypothesis. 5. How do you think the results would differ if you were to have used a “fun size” bag of M & M’s? A 1 pound bag? Explain. 6. Suppose you were to obtain a Chi-square value of 7.82 or greater in your data analysis with 2 degrees of freedom. What would this indicate? 142 AP Lab 7: Genetics of Organisms Using Corn OVERVIEW In this lab you will use living organisms to do genetic crosses. You will learn how to collect and manipulate the organisms, collect data from F1 and F2 generations, and analyze the results from a monohybrid, dihybrid, or sex-linked cross. The procedures that follow apply to fruit flies; your teacher may substitute other procedures using other organisms. OBJECTIVES • • • Investigate the independent assortment of two genes and determine whether the two genes are autosomal or sex-linked using a multi-generation experiment. Calculate Chi Square Analyze the data from your genetic crosses using chi-square analysis techniques. PROCEDURE Part A: Monohybrid Cross In corn plants, starchy kernels (T) are dominant over sweet kernels (t). You will analyze the results of the F2 offspring between a cross of a homozygous starchy corn plant and a homozygous sweet corn plant. 1. Count 20 rows of corn and record your data in table1. These are your observed values 2. Calculate the expected phenotypic ratio: Parental Genotypes (P generation): x First Filial Generation Genotypes (F1 generation): Expected F2 generation Phenotypic Ratio: Expected F2 generation Genotypic Ratio: Punnett Square Showing the F2 generation 3. Calculate Chi Square by filling in table 2. modified from College Board Lab Manual 143 Table 1: Number of Each Phenotype Observed in Each Row of the corn Row Phenotype 1: Phenotype 2: 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 TOTAL (individual) TOTAL (class data) Table 2: Determining Chi Square Value Using Class Data Phenotype Expected (e) Observed (o) o–e Degrees of freedom = (number of phenotypes – 1 (o – e)2 (o – e)2 e ∑= modified from College Board Lab Manual 144 Chi Square Critical Values Table Degrees of Freedom (df) Probability 1 2 3 4 5 0.05 3.84 5.99 7.82 9.49 11.1 0.01 6.64 9.21 11.3 13.2 15.1 0.001 10.8 13.8 16.3 18.5 20.5 Part B: Dihybrid Cross In corn plants, starchy kernels (T) are dominant over sweet kernels (t) and purple kernels (R) are dominant over yellow kernels (r). You will analyze the F2 generation results of a cross between a homozygous starchy, homozygous purple corn plant and a homozygous sweet, homozygous yellow corn plant. 1. Count 20 rows of corn and record your data in table 3. These are your observed values 2. Calculate the expected phenotypic ratio: Parental Genotypes (P generation): x First Filial Generation Genotypes (F1 generation): 3. Show your work in the punnett square below for the F2 generation. Expected F2 generation Phenotypic Ratio: modified from College Board Lab Manual 145 Data Table 3: Number of Each Phenotype Observed in Each Row Row Phenotype 1: Phenotype 2: Phenotype 3: Phenotype 4: 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 TOTAL (individual) TOTAL (class data) Data Table 4: Determining Chi Square Value Using Class Data Phenotype Expected (e) Observed (o) o–e Degrees of freedom = (number of phenotypes – 1) (o – e)2 (o – e)2 e ∑= modified from College Board Lab Manual 146 Analysis: Part I: Monohybrid 1. What is your null hypothesis? 2. Refer to the Chi Square Critical Values Table. With the available data, is the null hypothesis accepted or rejected? Explain your answer. Part II: Dihybrid 3. Refer to the Chi Square Critical Values Table. With the available data, is the null hypothesis accepted or rejected? 4. Why would you want to perform a Chi-Square? modified from College Board Lab Manual 147 148 149 150 151 152
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