Energy and respiration
🎯What you need to be able to do
- Outline the need for energy in living organisms and describe the features that make ATP the universal energy currency.
- State that ATP is made by substrate-linked phosphorylation and by chemiosmosis in mitochondria and chloroplasts.
- Explain the relative energy values of carbohydrates, lipids and proteins as respiratory substrates.
- Define the respiratory quotient and calculate RQ values from equations for respiration.
- Describe and carry out respirometer investigations to determine RQ and the effect of temperature on rate.
- State where each stage of aerobic respiration occurs and outline glycolysis, the link reaction, the Krebs cycle and oxidative phosphorylation.
- Relate mitochondrial structure to function, outline anaerobic respiration in mammals and yeast, explain the difference in energy yield, and explain how rice is adapted to submerged roots.
- Describe investigations using DCPIP and methylene blue to follow the rate of respiration in yeast.
📚The biology
Why ATP
Energy is needed for active transport, movement (muscle contraction, cilia, cytoplasmic streaming) and anabolic reactions such as DNA replication and protein synthesis. ATP is the universal currency because:
- it releases a small, usable quantity of energy in one step, so little is wasted — unlike glucose, which would release far too much at once;
- the reaction is a single-step hydrolysis of the terminal phosphate, so it is fast;
- it is soluble and moves easily within the cell;
- it is readily regenerated from ADP and phosphate;
- it cannot leave the cell, so it is not lost.
ATP is not a long-term store — a cell holds only seconds' worth and recycles it constantly. It is made in two ways: by transfer of phosphate in substrate-linked reactions, and by chemiosmosis in the membranes of mitochondria and chloroplasts.
Respiratory substrates and RQ
Lipids yield the most energy per gram, because they contain the most hydrogen per unit mass — and it is hydrogen, carried by reduced NAD and FAD to the electron transport chain, that ultimately generates ATP. Carbohydrates yield less, proteins least of the three in practice (and are used only when carbohydrate and lipid are exhausted).
The respiratory quotient is
For glucose, C₆H₁₂O₆ + 6O₂ → 6CO₂ + 6H₂O, so RQ = 6/6 = 1.0. Lipids are less oxidised to begin with, so they need more oxygen per carbon: RQ is about 0.7. Proteins give about 0.9. An RQ above 1.0 means carbon dioxide is being produced without oxygen being used — anaerobic respiration is occurring alongside aerobic.
The four stages
- Glycolysis — in the cytoplasm.
- Link reaction — in the mitochondrial matrix.
- Krebs cycle — in the mitochondrial matrix.
- Oxidative phosphorylation — on the inner membrane of the mitochondrion.
Glycolysis. Glucose is phosphorylated using 2 ATP — an investment — to form fructose 1,6-bisphosphate (6C). This splits into two triose phosphate molecules (3C), which are oxidised to pyruvate (3C), producing 4 ATP (so a net gain of 2) and 2 reduced NAD. No oxygen is used at this stage.
Link reaction. When oxygen is available, pyruvate enters the mitochondrion. It is decarboxylated (losing CO₂) and dehydrogenated (reducing NAD), leaving a 2C acetyl group which coenzyme A carries into the Krebs cycle as acetyl coenzyme A.
Krebs cycle. Oxaloacetate (4C) accepts the 2C fragment from acetyl coenzyme A to form citrate (6C). Through a series of small steps citrate is converted back to oxaloacetate, and in doing so undergoes decarboxylations (releasing CO₂) and dehydrogenations that reduce NAD and FAD. One ATP is made per turn by substrate-linked phosphorylation. The cycle turns twice per glucose, because glycolysis produced two pyruvate.
Oxidative phosphorylation. This is where almost all the ATP is made:
- Reduced NAD and FAD deliver hydrogen atoms to carriers in the inner membrane; the hydrogen atoms split into protons and energetic electrons.
- Electrons pass along the electron transport chain, releasing energy at each step.
- That energy is used to transfer protons across the inner membrane, from matrix to intermembrane space, building a proton gradient.
- Protons return to the matrix by facilitated diffusion through ATP synthase, and the energy released drives ATP synthesis. This is chemiosmosis.
- Oxygen is the final electron acceptor, combining with electrons and protons to form water.
You are not required to know the individual carriers or the structural detail of ATP synthase.
Mitochondrial structure
A double membrane. The inner membrane is folded into cristae, giving a large surface area for the electron transport chain and ATP synthase. The intermembrane space is narrow, so a proton gradient is established quickly with relatively few protons. The matrix contains the enzymes of the link reaction and Krebs cycle, plus circular DNA and 70S ribosomes. Cells with a high energy demand — muscle, the proximal convoluted tubule — have many mitochondria with densely packed cristae, and that is the observation exam questions ask you to explain.
Anaerobic respiration
Without oxygen, only glycolysis continues, giving a net 2 ATP per glucose. The problem is regenerating oxidised NAD so glycolysis can keep going, and the two solutions differ:
- Mammals — lactate fermentation. Pyruvate accepts hydrogen from reduced NAD, forming lactate. Reversible: lactate is later oxidised back to pyruvate when oxygen is available.
- Yeast — ethanol fermentation. Pyruvate is decarboxylated to ethanal, which accepts hydrogen from reduced NAD to form ethanol. Carbon dioxide is released. Irreversible.
Aerobic respiration yields far more ATP because the hydrogen carried by reduced NAD and FAD from the link reaction and Krebs cycle can be passed to the electron transport chain, and the glucose is completely oxidised to carbon dioxide and water. In anaerobic conditions the substrate is only partly broken down and much of the energy remains locked in lactate or ethanol. A detailed ATP tally is not required.
Rice
Rice grows with its roots submerged, where oxygen is scarce. Three adaptations are named:
- Aerenchyma — air spaces in the roots and stems through which oxygen diffuses down from the shoot to the submerged tissue.
- Ethanol fermentation in the roots, with a tolerance of the ethanol produced, allowing some ATP generation when oxygen runs out.
- Faster growth of stems in response to rising water, so leaves stay above the surface and gas exchange with the air continues.
Measuring respiration
A respirometer holds living material in a sealed tube with soda lime or potassium hydroxide to absorb carbon dioxide, connected to a capillary tube containing a manometer fluid. Oxygen consumed reduces the volume of gas, so the fluid moves; the rate of movement gives oxygen uptake. A control tube containing glass beads of the same volume, and a water bath to hold temperature constant, are both essential.
To find RQ you take two readings on the same material: one with the carbon dioxide absorbent, which gives oxygen used, and one without, which gives the net change — oxygen used minus carbon dioxide produced.
Redox indicators offer a different route. DCPIP and methylene blue are blue when oxidised and colourless when reduced. Added to a yeast suspension, they accept hydrogen from the dehydrogenation reactions of respiration, so the time taken to decolourise is a measure of the rate of respiration — the faster the decolourisation, the faster the rate. Use this to compare temperatures or substrate concentrations, with a colorimeter if a numerical result is wanted.
✏️Worked example
(a) With soda lime: all carbon dioxide produced is absorbed, so the volume change is due to oxygen used alone.
Without soda lime: carbon dioxide produced partly replaces the oxygen used, so the movement measures the difference, oxygen used minus carbon dioxide produced:
So carbon dioxide produced = 7.2 − 2.1 = 5.1 mm³ min−1.
(b)
An RQ of about 0.7 indicates that lipid is the main respiratory substrate. That is entirely expected in germinating seeds, many of which store food as lipid because it yields more energy per gram and is stored without water.
(c) The control tube contains glass beads of the same volume as the seeds, with the same soda lime, and is connected to the other arm of the manometer. Gases expand and contract with changes in atmospheric pressure and temperature, and such a change would move the fluid whether or not the seeds were respiring. The control experiences the same physical changes but no respiration, so the manometer records only the difference — the volume change caused by the seeds.
The water bath keeps temperature constant, for two reasons: the gas in the tube would expand if the apparatus warmed, giving a false reading, and respiration is enzyme-controlled, so its rate depends strongly on temperature. Without control, temperature would be an uncontrolled variable affecting the very thing being measured.
📝Practise
Work through these, then reveal the answer. Each question targets a different objective from the list above.
1. Explain why the complete absence of oxygen stops the Krebs cycle, even though the Krebs cycle does not use oxygen.
2. Calculate the RQ for the respiration of a fatty acid, given the equation C₁₈H₃₆O₂ + 26O₂ → 18CO₂ + 18H₂O, and explain what the value tells you.
3. Describe how a proton gradient is used to make ATP in a mitochondrion.
4. Compare lactate fermentation in mammals with ethanol fermentation in yeast.
5. Explain how rice is adapted to grow with its roots submerged in water.
6. A student uses methylene blue with a yeast suspension to compare respiration at 20 °C and 35 °C. Describe the expected result and explain the principle, then state two variables to control.
🔗Go deeper — other people’s work
These are external resources, not mine. If one stops working, tell me and everything above it on this page still stands.
- Any well-made animation of the electron transport chain and chemiosmosis — the proton gradient is far easier to watch than to read
- Nuffield Foundation practical biology — respirometer protocols, including the RQ determination and the control tube
- Khan Academy — cellular respiration, if you want the stages at a slower pace than the syllabus summary allows