This MCQ module is based on: Chemiosmosis Calvin Cycle
Chemiosmosis Calvin Cycle
This assessment will be based on: Chemiosmosis Calvin Cycle
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Chemiosmosis and the Calvin Cycle
Part 2 left us with electrons flowing and a vague promise that ATP appears somewhere along the way. That is not an explanation. We now examine how ATP is actually synthesised in the chloroplast, and then follow the ATP and NADPH into the reactions that build sugar.
11.6.3 Chemiosmotic Hypothesis
The chemiosmotic hypothesis has been put forward to explain the mechanism of ATP synthesis in the chloroplast. Like in respiration, in photosynthesis too ATP synthesis is linked to the development of a proton gradient across a membrane. This time these are the membranes of the thylakoid.
What causes the proton gradient? Three contributions
To find the steps that cause a proton gradient to develop, we must look again at the activation of electrons and their transport.
Add the three together and the accounting is unambiguous: within the chloroplast, protons in the stroma decrease in number, while in the lumen there is accumulation of protons. This creates a proton gradient across the thylakoid membrane as well as a measurable decrease in pH in the lumen.
Why are we so interested in the proton gradient?
Because it is the breakdown of this gradient that leads to the synthesis of ATP. The gradient is broken down due to the movement of protons across the membrane to the stroma through the transmembrane channel of the CF₀ of the ATP synthase.
The ATP synthase enzyme consists of two parts:
- CF₀ — embedded in the thylakoid membrane, forming a transmembrane channel that carries out facilitated diffusion of protons across the membrane.
- CF₁ — protrudes on the outer surface of the thylakoid membrane, on the side that faces the stroma.
The breakdown of the gradient provides enough energy to cause a conformational change in the CF₁ particle of the ATP synthase, which makes the enzyme synthesise several molecules of energy-packed ATP.
Along with the NADPH produced by the movement of electrons, the ATP will be used immediately in the biosynthetic reaction taking place in the stroma, responsible for fixing CO₂ and synthesis of sugars.
🎯 Interactive: Where do the protons come from and go?
Effect on the lumen: Protons are added to the lumen
The water splitting complex sits on the inner side of the thylakoid membrane, so the 2H+ released when water is split accumulate inside the lumen. This is the first and most direct contribution to the gradient.
11.7 Where are the ATP and NADPH Used?
The products of the light reaction are ATP, NADPH and O₂. Of these, O₂ diffuses out of the chloroplast, while ATP and NADPH are used to drive the processes leading to the synthesis of food — more accurately, sugars. This is the biosynthetic phase of photosynthesis.
This process does not directly depend on the presence of light but is dependent on the products of the light reaction, i.e., ATP and NADPH, besides CO₂ and H₂O.
The search for the first product of CO₂ fixation
We saw earlier that CO₂ is combined with H₂O to produce (CH₂O)n or sugars. It was of interest to scientists to find out what was the first product formed when CO₂ is taken into a reaction, or fixed.
Just after World War II, among the several efforts to put radioisotopes to beneficial use, the work of Melvin Calvin is exemplary. His use of radioactive ¹⁴C in algal photosynthesis studies led to the discovery that the first CO₂ fixation product was a 3-carbon organic acid. He also contributed to working out the complete biosynthetic pathway; hence it was called the Calvin cycle after him. The first product identified was 3-phosphoglyceric acid, or in short PGA.
Scientists also tried to know whether all plants have PGA as the first product of CO₂ fixation. Experiments conducted over a wide range of plants led to the discovery of another group of plants where the first stable product of CO₂ fixation was again an organic acid, but one which had 4 carbon atoms. This acid was identified to be oxaloacetic acid, or OAA.
Since then, CO₂ assimilation during photosynthesis was said to be of two main types:
- plants in which the first product of CO₂ fixation is a C₃ acid (PGA) — the C₃ pathway;
- plants in which the first product is a C₄ acid (OAA) — the C₄ pathway.
11.7.1 The Primary Acceptor of CO₂
Here is the question that puzzled the scientists studying the ‘dark reaction’: how many carbon atoms would a molecule have which, after accepting (fixing) CO₂, would have 3 carbons (of PGA)?
The obvious arithmetic suggests two. And that is exactly the trap the researchers fell into: they believed that since the first product was a C₃ acid, the primary acceptor would be a 2-carbon compound, and they spent many years trying to identify a 2-carbon compound.
11.7.2 The Calvin Cycle
Calvin and his co-workers then worked out the whole pathway and showed that the pathway operated in a cyclic manner — the RuBP was regenerated.
For ease of understanding, the Calvin cycle can be described under three stages: carboxylation, reduction and regeneration.
Stage 1 — Carboxylation
Carboxylation is the fixation of CO₂ into a stable organic intermediate. It is the most crucial step of the Calvin cycle, where CO₂ is utilised for the carboxylation of RuBP. This reaction is catalysed by the enzyme RuBP carboxylase, which results in the formation of two molecules of 3-PGA.
Stage 2 — Reduction
These are a series of reactions that lead to the formation of glucose. The steps involve the utilisation of 2 molecules of ATP for phosphorylation and two of NADPH for reduction, per CO₂ molecule fixed. The fixation of six molecules of CO₂ and 6 turns of the cycle are required for the formation of one molecule of glucose from the pathway.
Stage 3 — Regeneration
Regeneration of the CO₂ acceptor molecule RuBP is crucial if the cycle is to continue uninterrupted. The regeneration steps require one ATP for phosphorylation to form RuBP.
The budget: what goes in, what comes out
Hence for every CO₂ molecule entering the Calvin cycle, 3 molecules of ATP and 2 of NADPH are required — two ATP in the reduction stage plus one ATP in the regeneration stage.
| In | Out |
|---|---|
| Six CO₂ | One glucose |
| 18 ATP | 18 ADP |
| 12 NADPH | 12 NADP |
What to do. On paper, write the number of carbon atoms present at each named point in a single turn of the Calvin cycle: RuBP before carboxylation; the CO₂ that joins it; the total immediately after carboxylation; each PGA molecule; both PGA molecules together. Then answer: where did the extra carbon go, and why does the cycle need six turns rather than two to build a 6-carbon glucose?
The count. RuBP = 5 C. Incoming CO₂ = 1 C. Total = 6 C. Each 3-PGA = 3 C; two of them together = 6 C. Carbon balances exactly — nothing is lost, the 6-carbon intermediate simply splits into two equal halves.
Why six turns, not two. It is tempting to think that two turns give two 3-PGA pairs and therefore a 6-carbon sugar. But most of the fixed carbon must be spent rebuilding RuBP: the acceptor is a 5-carbon molecule and it has to be regenerated every turn, or the cycle stops. Only a small fraction of the triose phosphate leaves the cycle towards sucrose and starch. NCERT states the requirement plainly — the fixation of six molecules of CO₂ and 6 turns of the cycle are required for the formation of one molecule of glucose, at a cost of 18 ATP and 12 NADPH.
🎯 Competency-Based Questions
Q1. What happens to the lumen pH after T1, and what happens to ATP synthesis? L3 Apply
Q2. Fill in the blanks: The ATP synthase of the chloroplast has two parts — ______ is embedded in the thylakoid membrane and forms a ______ that carries out ______ of protons, while ______ protrudes on the surface facing the ______. L1 Remember
Q3. A student claims that because the Calvin cycle uses 3 ATP and 2 NADPH per CO₂, non-cyclic photophosphorylation alone should be able to supply the leaf. Analyse the flaw. L4 Analyse
Q4. Early researchers hunted for years for a 2-carbon primary acceptor of CO₂. Why was that a reasonable guess, and what single structural fact made it wrong? L4 Analyse
Q5. Two students argue. One says respiration and photosynthesis use “the same” chemiosmotic mechanism; the other says they are fundamentally different. Evaluate both positions. L5 Evaluate
🧠 Assertion–Reason Questions
For each pair choose: (A) Both A and R are true and R is the correct explanation of A. (B) Both A and R are true but R is not the correct explanation of A. (C) A is true but R is false. (D) A is false but R is true.
Assertion (A): The pH of the thylakoid lumen falls during the light reaction.
Reason (R): Water splitting occurs on the inner side of the thylakoid membrane and electron carriers release protons into the lumen, while NADP reduction removes protons from the stroma.
Assertion (A): The Calvin cycle operates only in C₃ plants.
Reason (R): The first product of CO₂ fixation in C₃ plants is 3-phosphoglyceric acid.
Assertion (A): Carboxylation is described as the most crucial step of the Calvin cycle.
Reason (R): It is the step in which CO₂ is fixed into a stable organic intermediate by RuBisCO, giving two molecules of 3-PGA.