Photosynthesis is a physico-chemical process by which photosynthetic organisms utilize light energy to synthesize organic compounds from inorganic raw materials ($\text{CO}_2$ and $\text{H}_2\text{O}$), with the concomitant release of molecular oxygen ($\text{O}_2$). Key historical discoveries established the foundations of photosynthetic biochemistry:
- Joseph Priestley (1770): Performed the classic bell jar experiment with a burning candle, a mouse, and a sprig of mint (Mentha). He observed that a candle burning in a closed bell jar soon extinguished, and a mouse placed inside suffocated. However, when a living mint plant was placed inside, the candle continued to burn and the mouse survived. Priestley hypothesized that plants restore to the air whatever breathing animals and burning candles remove. Priestley subsequently discovered oxygen in 1774.
- Jan Ingenhousz (1779): Demonstrated that sunlight is strictly essential for plants to purify air. Using aquatic plants (Hydrilla), he showed that in bright sunlight, tiny bubbles formed around the green parts of the plant, while no bubbles formed in darkness. He later identified these bubbles as oxygen and concluded that only the green parts of plants can release oxygen under illumination.
- Julius von Sachs (1854): Provided evidence that the green substance in plants (now known as chlorophyll) is located in specialized intracellular bodies (chloroplasts) and that the end product of plant growth is glucose, which is stored in the form of starch.
- T.W. Engelmann (1888): Discovered the first action spectrum of photosynthesis. Using a glass prism, he split white light into its spectral rainbow components and illuminated a filament of the filamentous green alga Cladophora placed in a suspension of aerobic bacteria (which seek oxygen). The bacteria gathered predominantly in the zones of blue and red light, demonstrating that these wavelengths are the most effective for oxygen evolution.
- Cornelius van Niel (1930s): Conducted groundbreaking comparative microbiological studies with purple and green sulfur bacteria. He demonstrated that photosynthesis is essentially a light-dependent redox reaction wherein hydrogen from an oxidizable donor reduces carbon dioxide to carbohydrates:
$$2\text{H}_2\text{A} + \text{CO}_2 \xrightarrow{\text{Light}} 2\text{A} + \text{CH}_2\text{O} + \text{H}_2\text{O}$$In green plants, $\text{H}_2\text{O}$ acts as the hydrogen donor and is oxidized to $\text{O}_2$. In purple and green sulfur bacteria, $\text{H}_2\text{S}$ is the hydrogen donor, yielding elemental sulfur or sulfate rather than oxygen. Van Niel deduced that the $\text{O}_2$ evolved by green plants comes from $\text{H}_2\text{O}$, not from $\text{CO}_2$. This was definitively confirmed in 1941 by Ruben, Randall, and Kamen using the heavy stable isotope $^{18}\text{O}$:$$6\text{CO}_2^{16} + 12\text{H}_2\text{O}^{18} \xrightarrow{\text{Light, Pigments}} \text{C}_6\text{H}_{12}\text{O}_6^{16} + 6\text{H}_2\text{O}^{16} + 6\text{O}_2^{18}$$
Photosynthesis occurs in the mesophyll cells of green leaves, which harbor between 20 to 100 chloroplasts per cell. The chloroplast possesses a clear division of physiological labor between its membranous and fluid compartments:
| Chloroplast Compartment | Structural Organization | Primary Function & Reaction Phase |
|---|---|---|
| Thylakoid Membrane & Grana | Flattened disc-like membranous sacs stacked into grana (10–100 thylakoids per granum), interconnected by stroma lamellae. Harbors Photosystems I & II, Cytochrome $b_6f$, and ATP synthase. | Light Reaction (Photochemical Phase): Trapping radiant photon energy, photolysis of water, synthesis of assimilatory power (ATP and NADPH), and oxygen release. |
| Thylakoid Lumen | Aqueous interior space enclosed by the thylakoid membrane. Maintains an acidic pH (~5.0) during illumination. | Site of water photolysis via Oxygen-Evolving Complex (OEC) and accumulation of high proton concentration ($H^+$) driving chemiosmotic ATP synthesis. |
| Stroma (Matrix) | Gel-like aqueous fluid containing 70S ribosomes, circular double-stranded DNA, soluble stromal enzymes, and magnesium ions ($\text{Mg}^{2+}$). | Dark Reaction (Biosynthetic Phase): Enzymatic reduction of $\text{CO}_2$ into triose phosphates and carbohydrates (Calvin cycle) catalyzed by RuBisCO. |
| Stroma Lamellae (Frets) | Unstacked tubular membranous bridges connecting adjacent grana. Lacks PS II and NADP reductase enzyme. | Site of Cyclic Photophosphorylation, harboring only PS I ($P_{700}$) and generating supplemental ATP without NADPH or $\text{O}_2$ evolution. |