b5 digestive system
4 detailed 50-minute lessons with teaching scripts, worked examples, parent guides, and assessment criteria.
4 detailed 50-minute lessons with teaching scripts, worked examples, parent guides, and assessment criteria.

Write down everything you already know about b5 digestive system. Then check against the key terms: Digestion. Use a mini-whiteboard or paper.
Start with the revision notes summary, then attempt: Name the enzyme that breaks down starch and state where it is produced. (2 marks)
Your student states one thing they learned and one question they still have about b5 digestive system.
Quick recap: write 3 key points from Lesson 1 on b5 digestive system. Check them against the notes below.
| Term | Meaning | Example |
|---|---|---|
| Mouth | Breaks food down mechanically and chemically | Teeth chew food; salivary amylase begins starch digestion |
| Oesophagus | Carries food from mouth to stomach | Peristalsis (muscle contractions) pushes food along |
| Stomach | Churns and digests food | Protease digests protein; HCl kills bacteria and provides optimum pH |
| Small intestine | Digests food and absorbs nutrients | All three enzymes act here; villi absorb small soluble molecules into blood |
| Large intestine | Absorbs water | Water is absorbed from undigested food, forming faeces |
| Rectum | Stores faeces | Faeces stored until they leave the body via the anus |
| Amylase | Starch | Sugars (maltose) |
| Protease | Protein | Amino acids |
Q: Name the enzyme that breaks down starch and state where it is produced. (2 marks)
Answer: Amylase. It is produced in the salivary glands and the pancreas (and acts in the mouth and small intestine).
Your student teaches the key points back to you without looking. Fill any gaps immediately.
Recall the key terms: Digestion. Define each in one sentence.
Q1: Name the enzyme that breaks down starch and state where it is produced. (2 marks)
Answer: Amylase. It is produced in the salivary glands and the pancreas (and acts in the mouth and small intestine).
Q2: Describe how bile helps the digestion of fats. (3 marks)
Answer: Bile emulsifies fats by breaking large fat drops into smaller droplets, increasing the surface area for lipase to act on. Bile also neutralises stomach acid, creating the slightly alkaline conditions that pancreatic enzymes (including lipase) need to work at their optimum rate.
Q3: Explain why an enzyme denatures at high temperature. (3 marks)
Answer: At high temperature, the bonds holding the enzyme's structure together break. This causes the active site to change shape so the substrate can no longer fit. The enzyme is denatured and can no longer catalyse the reaction. Denaturation is permanent.
Q4: Describe how villi are adapted for efficient absorption in the small intestine. (4 marks)
Answer: Villi are finger-like projections that increase the surface area for absorption. Each villus has microvilli on the surface of its cells which further increase surface area. The wall of each villus is only one cell thick, creating a short diffusion path for molecules to enter the blood. Each villus has a good blood supply (capillary network) which maintains a steep concentration gradient by carrying away absorbed molecules.
Q5: A student tests a food sample with Benedict's reagent and heats it. The solution turns brick red. What does this result show? Name one other food test and describe how to carry it out. (4 marks)
Answer: The brick red result with Benedict's test shows that reducing sugars are present in a high concentration. Another food test is the iodine test for starch: add iodine solution to the food sample; a blue-black colour indicates starch is present.
Q6: Explain why stomach protease has a different optimum pH to pancreatic protease. (3 marks)
Answer: Stomach protease works in the stomach, which contains hydrochloric acid creating very acidic conditions (pH ~2). Its active site is adapted to work at this low pH. Pancreatic protease works in the small intestine, where bile neutralises acid and creates slightly alkaline conditions (pH ~7-8). Its active site is adapted to work at this higher pH. Each enzyme has evolved to work at the pH of the region where it functions.
Review any questions answered incorrectly. Identify whether the error was knowledge, method, or reading the question.
Review what these command words require: state (one point), describe (say what happens), explain (say why), compare (both sides), evaluate (judgement).
Extended question: Extended Answer 6 marks: Explain how enzyme structure relates to function and how pH affects enzyme activity. <div class="
Enzymes have a specific active site shape that is complementary to their substrate (the lock and key model). This means each enzyme only catalyses one reaction — amylase only breaks down starch, protease only breaks down protein. The active site must match the substrate exactly for the enzyme-substrate complex to form. pH affects the shape of the active site. Each enzyme has an optimum pH at which it works best — for example, stomach protease works at pH 2 and pancreatic enzymes at pH 7–8. If the pH is too far from the optimum, the bonds holding the enzyme's shape break, the active site changes shape (denaturation), and the substrate can no longer fit. This is why bile neutralises stomach acid — to create the correct pH for pancreatic enzymes in the small intestine. Mark scheme: 1 mark for active site shape; 1 mark for lock and key / complementarity; 1 mark for specificity; 1 mark for optimum pH; 1 mark for denaturation explanation; 1 mark for linking bile/pH to enzyme function