IB Biology HL Cellular Respiration Paper 1 & 2 ~11 min read

Respiratory Substrates

Everything so far has assumed glucose. But a hibernating bear and a germinating sunflower seed are both running mostly on fat — and fat carries more than twice the energy per gram. The reason comes down to counting oxygen atoms.

📚 What you need to know

Energy per gram

Approximate energy released per gram Lipids carry more than twice as much energy as the same mass of sugar 37 17 170 10 20 30 40lipids carbohydrates proteins energy / kJ per gramMore energy per gram means lighter stores for the same amount of fuel Figures are approximate and vary between sources and between molecules
An animal storing energy as fat rather than carbohydrate carries less than half the weight around — which matters a great deal if it has to fly or migrate.

Why lipids hold more

Respiration releases energy by oxidising the fuel. A molecule that is already partly oxidised has less left to give.

Carbohydrates contain plenty of oxygen atoms — think of the formula of glucose — so a good share of their carbon and hydrogen is already bonded to oxygen. Lipids contain far fewer oxygen atoms per molecule, so their hydrogen and carbon atoms are more oxidisable. There is simply more oxidising left to do, and every oxidation releases energy.

A useful way to picture it: a carbohydrate has already been through part of the process, so you are buying a partly used battery. A lipid is a fresh one. Same chemistry, different starting point.

Why lipids make good stores

Why we still use carbohydrate first. Lipids are the better store, but carbohydrates are hydrolysed more easily, so their energy is transferred more quickly. Glucose is also the only substrate that can enter glycolysis directly — which is why a sprinter relies on carbohydrate and a migrating bird relies on fat.

How each substrate enters the pathway

This is the point most students miss. Only carbohydrate can be used for glycolysis, and therefore only carbohydrate can support anaerobic respiration. Lipids and proteins have to be converted into something the pathway already recognises, and they join it further along.

Three fuels, three different entry points Only the top route can run without oxygen GLUCOSE glycolysis pyruvate LIPIDS fatty acids and glycerol fatty acids are broken into 2C acetyl groups PROTEINS amino acids used only when glucose and lipids are unavailable ACETYL CoA and then the KREBS CYCLELipids and proteins join the pathway after glycolysis has already finished That is exactly why they cannot be respired anaerobically
Trace the lipid route with your finger: it never touches glycolysis. Without oxygen, the Krebs cycle cannot run, so fat cannot be used at all.

Comparing lipids and carbohydrates

FeatureLipidsCarbohydrates
Energy content per gramHigher — more than twice as muchLower
Metabolic water on oxidationProduces a higher volumeProduces a lower volume
Solubility in cellsInsoluble, so osmotic properties are unaffectedSoluble, so osmotic properties are affected
Ease of breakdownHydrolysed less easily, so energy is transferred more slowlyHydrolysed more easily, so energy is transferred more quickly
Can enter glycolysis?No — must be converted to acetyl CoAYes, directly
Usable anaerobically?NoYes

Worked examples

WE 1

Explain the energy difference

Explain why the oxidation of lipids releases more energy per gram than the oxidation of carbohydrates. (3 marks)

Point 1: the structural difference Lipids contain fewer oxygen atoms per molecule than carbohydrates do. Point 2: what that means chemically Their hydrogen and carbon atoms are therefore more oxidisable — less of the molecule has already been oxidised. Point 3: the consequence More oxidation reactions can occur per gram, releasing more hydrogen for the electron carriers, so more energy is transferred to ATP. Fewer oxygens means more left to oxidise “more oxidisable” is the phrase mark schemes reward; avoid vague answers like “fat has more energy”
WE 2

Compare two stores by mass

Lipids release about 37 kJ g−1 and carbohydrates about 17 kJ g−1. Calculate the energy from 10 g of each, the difference, and how many times more energy the lipid store provides. (3 marks)

Step 1: lipid 10 × 37 = 370 kJ Step 2: carbohydrate 10 × 17 = 170 kJ Step 3: compare Difference = 370 − 170 = 200 kJ. Ratio = 370 ÷ 170 = 2.2 (to 2 s.f.) 370 kJ and 170 kJ — a difference of 200 kJ, or about 2.2 times as much “more than twice” matches the standard statement, so it is a good sense-check
WE 3

Apply it to a desert animal

Suggest why storing energy as lipid rather than carbohydrate is an advantage for a desert mammal. (3 marks)

Point 1: water Oxidising lipid produces a much larger volume of metabolic water than the same mass of carbohydrate, which matters where drinking water is scarce. Point 2: mass Lipids hold more than twice the energy per gram, so the same energy reserve weighs less to carry. Point 3: osmosis Lipids are insoluble, so a large store does not lower the water potential of the cells or draw water in by osmosis. More water, less weight, no osmotic problem the osmosis point is the one most students leave out

💡 Exam tips

⚠ Common mistakes

That completes Cellular Respiration — glucose is oxidised in small steps, the hydrogens are collected by NAD and FAD, and oxygen pulls them down the chain so their energy can be captured as ATP. Up next: The Process of Photosynthesis, which runs the same machinery in reverse to build the glucose in the first place.

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