Q.Is there something wrong in following schematic presentation? If yes, correct it so that photosynthesis will be operated. [Diagram printed in the book, with the following elements/labels as extracted from the page: Primary acceptor, PS-I, ADP, ATP, Cytochrome complex, PS-II, Primary acceptor, NADP reductase, NADP+, NADPH, H2O + 1/2 O2 up-arrow + 2e-, 2H+. The exact arrangement/connections of these labels in the printed figure could not be reliably determined from the extracted text alone.]
You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
Start your 14-day free trial to unlock the full solution →Concept understanding — Cyclic and Non-Cyclic Photophosphorylation
The Big Picture: Why Plants Need Two Kinds of Light Reactions
Photosynthesis has two jobs: make ATP (the energy currency) and make NADPH (the reducing power). Calvin cycle needs both — 3 ATP and 2 NADPH for every molecule of G3P it builds. But here's the problem: the light reactions don't always produce ATP and NADPH in that exact ratio. Sometimes the cell needs extra ATP without extra NADPH. That's where the two pathways come in.
Think of it like a factory. Non-cyclic photophosphorylation is the main assembly line — it produces both ATP and NADPH, plus oxygen as a byproduct. Cyclic photophosphorylation is a backup loop — it only makes ATP, no NADPH, no oxygen. The plant switches between them depending on what the Calvin cycle needs at that moment.
Non-Cyclic Photophosphorylation: The Main Line
This is the standard Z-scheme you see in every textbook. It involves both photosystems — PS II and PS I — working in series.
Step by step:
- Light hits PS II (P680). An electron gets excited and is passed to a primary acceptor.
- That electron is replaced by splitting water: . This is the only source of oxygen in photosynthesis.
- The excited electron travels down an electron transport chain (ETC) from PS II to PS I. As it moves through the cytochrome complex, it pumps protons () into the thylakoid lumen, building a gradient.
- That proton gradient drives ATP synthase — photophosphorylation happens here. ATP is made.
- The electron, now lower in energy, reaches PS I (P700). Light hits PS I, re-exciting the electron to a much higher energy level.
- This high-energy electron is passed to ferredoxin (Fd) and then to NADP reductase, which reduces NADP to NADPH.
The key point: electrons flow from water to NADP in a one-way path. They never return to where they started. That's why it's called non-cyclic.
Non-cyclic photophosphorylation produces ATP, NADPH, and O. It requires both PS II and PS I.
Cyclic Photophosphorylation: The Shortcut
Sometimes the Calvin cycle has enough NADPH but needs more ATP. The plant can't just make ATP without making NADPH — unless it uses a different route.
In cyclic photophosphorylation, only PS I is involved. PS II and water splitting are completely bypassed.
How it works:
- Light excites PS I (P700). An electron is ejected and picked up by ferredoxin.
- Instead of going to NADP, the electron is shunted back to the cytochrome complex (via plastoquinone).
- It travels down the ETC again, pumping protons — generating ATP.
- The electron eventually returns to PS I, filling the hole it left.
The electron goes in a circle: PS I → ferredoxin → plastoquinone → cytochrome → plastocyanin → PS I. No water is split, no oxygen is released, no NADPH is made.
A common mistake: thinking cyclic photophosphorylation produces NADPH. It does not. The electron never reaches NADP reductase — it loops back to PS I.
Why Two Pathways? …
Unlock everything free for 14 days
- Full step-by-step solutions
- Concept-first explanations
- Methods, shortcuts & mistakes
- PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.