The specification says: investigate how enzyme activity can be affected by changes in pH
Aim
To investigate how pH affects the time taken for amylase to break down starch.
Background
Amylase is an enzyme that breaks down starch. Like all enzymes it has an active site whose shape is held by bonds between the amino acids of the protein. The substrate fits into the active site, so the shape must be right for the enzyme to work.
Each enzyme works best at its optimum pH. As the pH moves away from the optimum, the extra hydrogen ions or hydroxide ions interfere with the bonds that hold the enzyme in shape, so the active site changes shape and the substrate fits less well. At extreme pH values the enzyme is denatured and the substrate no longer fits.
A buffer solution keeps its pH almost constant when the enzyme and starch are added. The time for all the starch to be broken down is found by adding samples of the mixture to iodine solution, which is blue-black with starch and stays orange-brown when no starch is left.
Hypothesis
Amylase will break down starch in the shortest time at about pH 7, and will take longer at lower and higher pH values because the active site changes shape and the enzyme is denatured.
Variables
| Independent | pH of the reaction mixture (using buffer solutions of pH 3, 5, 7, 9 and 11) |
|---|---|
| Dependent | Time taken for the starch to be completely broken down (min), shown when the iodine stays orange-brown |
| Control |
|
Equipment
- Starch solution (1%), 2 cm³ per tube
- Amylase solution (1%), 2 cm³ per tube
- Buffer solutions at pH 3, 5, 7, 9 and 11, 1 cm³ per tube
- Iodine solution in a dropping bottle
- Spotting tile with 6 or more wells
- Water bath at 35 °C (a 250 cm³ beaker of water on a thermostatic heater, or hot and cold water) and a thermometer
- Test tubes, test tube rack and marker pen
- Syringes or graduated pipettes (2 cm³ and 5 cm³)
- Dropping pipettes or glass rods for sampling
- Stopwatch or timer
- Eye protection
Risk assessment
| Hazard | Risk | Precaution |
|---|---|---|
| Hot water at 35 °C and a kettle | Low risk of scalds if hot water is spilled while preparing the bath | Fill beakers no more than half full, stand them on a heatproof mat, and let kettle water cool before use. |
| Iodine solution | Irritates eyes and skin and stains clothes and skin | Wear eye protection; wash splashes off skin with water; clear spills straight away. |
| Buffer solutions at pH 3 and pH 11 | Mild irritants to eyes and skin | Wear eye protection and wash any splashes off with plenty of water. |
| Amylase solution | Enzymes can cause allergic reactions, and the dust from powders can affect breathing | Use the solution (not powder), avoid contact with skin and eyes, and wash hands after the practical. |
Method
- Put on eye protection. Set up a water bath at 35 °C and check the temperature with a thermometer.
- Put one drop of iodine solution into each well of a spotting tile (at least 6 wells for each pH).
- Label a test tube for each pH. Put 2 cm³ of starch solution into each tube, then add 1 cm³ of the matching buffer solution.
- Label a second set of tubes and put 2 cm³ of amylase solution in each.
- Stand the starch and buffer tube for the first pH and its tube of amylase in the water bath for 5 minutes.
- Pour the amylase into the starch and buffer tube, mix, return it to the water bath and start the stopwatch at once.
- After 30 seconds, use a clean dropping pipette to transfer one drop of the mixture into the first well of iodine solution. Record the colour.
- Take a further drop every 30 seconds and add it to the next well. Continue until the iodine stays orange-brown.
- Record the time when the iodine first stays orange-brown. If it is still blue-black after 20 minutes, record '>20 min'.
- Repeat steps 5–9 for each of the other pH values, using fresh tubes and a clean pipette each time.
- Repeat the whole investigation at least twice more and calculate the mean time at each pH.
- Calculate the rate at each pH as 1 ÷ mean time (min⁻¹) and plot a graph of rate against pH.
Results
Fill this table in as you go. Print the PDF for a copy to write on.
| pH | Time 1 (min) | Time 2 (min) | Time 3 (min) | Mean time (min) | Rate, 1 ÷ mean time (min⁻¹) |
|---|---|---|---|---|---|
| 3 | |||||
| 5 | |||||
| 7 | |||||
| 9 | |||||
| 11 |
Drawing the graph
Plot rate (1 ÷ mean time, min⁻¹) on the y-axis against pH on the x-axis. Mark each point with a cross and draw a smooth curve of best fit through them. Read off the pH with the highest rate: this is the optimum pH for the amylase to the accuracy of the pH values tested.
Example results and answersPractice data, conclusion, errors and 10 exam questions (29 marks) with mark schemes
Example results
| pH | Time 1 (min) | Time 2 (min) | Time 3 (min) | Mean time (min) | Rate, 1 ÷ mean time (min⁻¹) |
|---|---|---|---|---|---|
| 3 | 13.5 | 12.0 | 12.5 | 12.7 | 0.08 |
| 5 | 3.0 | 3.5 | 3.5 | 3.3 | 0.30 |
| 7 | 1.0 | 1.5 | 1.0 | 1.2 | 0.83 |
| 9 | 4.0 | 4.5 | 5.0 | 4.5 | 0.22 |
| 11 | 17.0 | 15.5 | 18.0 | 16.8 | 0.06 |
Conclusion
The starch was broken down fastest at pH 7 (mean time 1.2 min, rate 0.83 min⁻¹), so this amylase has an optimum pH close to 7, although it may lie between pH 5 and pH 9 because no pH values in between were tested. As the pH moved further from 7 in either direction the time increased, so the rate fell, with the slowest reactions at pH 3 (12.7 min) and pH 11 (16.8 min). Acid or alkaline conditions disrupt the bonds that hold the enzyme's shape, so the active site changes shape and the enzyme is denatured. Fewer starch molecules fit into the active sites, so the reaction is slower. The results support the hypothesis. Testing pH 6 and pH 8 would locate the optimum more precisely.
Errors and improvements
| Error | Effect on the results | Improvement |
|---|---|---|
| The buffer may not hold the pH exactly when the enzyme and starch are added | The actual pH of the mixture differs from the buffer value, so the optimum is misplaced | Use fresh buffers, add enough buffer, and check the pH of the final mixture with a pH meter. |
| Sampling every 30 seconds, so end-point times are approximate | Fast reactions (around pH 7) cannot be distinguished accurately | Sample every 10 or 15 seconds near the end-point, or use a colorimeter to follow the loss of starch. |
| Temperature of the water bath changes during the investigation | Different tubes react at different temperatures, so the pH is not the only variable that changes | Use a thermostatically controlled water bath and check with a thermometer; put tubes in the bath for 5 minutes before mixing. |
| Judging the end-point colour by eye | Random error in deciding when the iodine stays orange-brown | Compare with an orange-brown drop of iodine on the tile; have the same person judge each time; repeat and calculate a mean. |
| Only five pH values are tested | The optimum pH cannot be placed precisely, and the shape of the curve between points is uncertain | Test more pH values close to the peak, such as pH 6 and pH 8. |
Exam questions
10 questions, 29 marks. Write your answers on paper, then open each mark scheme.
Question 1
State the independent variable and the dependent variable in this investigation.
Show mark scheme for question 1
- independent: pH (of the buffer solution) (1)
- dependent: time taken for the starch to be broken down / for the iodine to stay orange-brown (1)
Question 2
Name two variables that the student must keep the same in every tube.
Show mark scheme for question 2
- temperature (1)
- volume / concentration of enzyme (1)
- volume / concentration of starch (1)
- volume of buffer (1)
- Max 2
Question 3
Explain why the student uses buffer solutions rather than adding an acid or alkali to change the pH.
Show mark scheme for question 3
- a buffer keeps the pH constant / at a known value (1)
- adding acid or alkali gives a pH that is hard to control / the pH could change when the starch and enzyme are added or during the reaction (1)
Question 4
The mean time for the starch to be broken down at pH 9 was 4.5 minutes. Calculate the rate of reaction, using rate = 1 ÷ time. Give your answer to 2 significant figures.
Show mark scheme for question 4
- 1 ÷ 4.5 (1)
- 0.22 (min⁻¹) (1) award 2 marks for the correct answer with no working; allow 0.222 for 1 mark only
Question 5
Use the table to describe the effect of pH on the time taken for starch to be broken down.
| pH | Mean time (min) |
|---|---|
| 3 | 12.7 |
| 5 | 3.3 |
| 7 | 1.2 |
| 9 | 4.5 |
| 11 | 16.8 |
Show mark scheme for question 5
- shortest time at pH 7 (1)
- time increases as the pH gets lower or higher than 7 (1)
- longest time at pH 11 / correct use of data, for example 16.8 min at pH 11 and 12.7 min at pH 3 (1)
Question 6
Explain why the time taken at pH 11 is much longer than at pH 7.
Show mark scheme for question 6
- the enzyme / amylase is denatured (1) reject enzyme killed
- the shape of the active site changes (1)
- starch (substrate) no longer fits / fewer enzyme–substrate complexes form (1)
Question 7
The student concludes that the optimum pH of amylase is exactly 7. Explain why this conclusion may not be correct.
Show mark scheme for question 7
- only pH values 5, 7 and 9 were tested close to the peak / values between were not tested (1)
- the optimum could be anywhere between pH 5 and pH 9 / test pH 6 and 8 to confirm (1)
Question 8
The students use a colorimeter instead of iodine on a spotting tile. Suggest one advantage of this.
Show mark scheme for question 8
- the end-point is judged objectively / not by eye (1)
- it gives a continuous / more accurate measure of starch remaining over time (1)
- Max 1
Question 9
Describe how you would investigate the effect of pH on the activity of amylase. Include how you would make sure the results are reliable.
Show mark scheme for question 9
| Level | Marks | What the answer does |
|---|---|---|
| 3 | 5–6 | A logical method covering buffer solutions of at least four pH values, mixing of enzyme and starch at a controlled temperature, use of iodine and timing to the end-point, control of at least two variables, and repeats with a mean |
| 2 | 3–4 | A method with most of the key steps, with limited control of variables or reliability, or one key step missing |
| 1 | 1–2 | A basic method with little detail, for example 'add acid and see how fast it works' |
Indicative content
- label tubes for each pH; add starch and buffer; equal volumes of amylase; place in a water bath at a fixed temperature, for example 35 °C, for 5 minutes; mix and start a stopwatch; sample every 30 s into iodine on a spotting tile; end-point when the iodine stays orange-brown; record time; repeat and calculate a mean; control temperature, volumes and concentrations; rate = 1 ÷ time
Question 10
Explain how a change in pH affects the structure and function of an enzyme such as amylase.
Show mark scheme for question 10
| Level | Marks | What the answer does |
|---|---|---|
| 3 | 5–6 | A full explanation linking pH change to bonds in the protein, change in active site shape, denaturation and reduced substrate binding, and mentioning the optimum pH |
| 2 | 3–4 | Explains that the shape changes and the substrate no longer fits, but without clear links to the bonds or the optimum |
| 1 | 1–2 | States that the enzyme stops working at the wrong pH with little explanation |
Indicative content
- each enzyme has an optimum pH; enzyme is a protein with a specific 3D shape; shape held by bonds between amino acids; extreme pH (too acidic or alkaline) breaks these bonds; shape of the active site changes; enzyme is denatured; substrate no longer fits / fewer enzyme-substrate complexes; reaction slows or stops
Exam tips
Written and checked against the Edexcel IGCSE Biology (4BI1) specification · Updated October 2026