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Biology subjects

Degen, G. E.

Publications and source records attributed to Degen, G. E..

2 recordsLinked to original sources

PGR5 is required to avoid photosynthetic oscillations during light transitions

The production of ATP and NADPH by the light reactions of photosynthesis and their consumption by the Calvin-Benson-Bassham (CBB) cycle and other downstream metabolic reactions requires careful regulation. Environmental shifts perturb this careful balance, leading to photo-oxidative stress and losses in CO2 assimilation. Imbalances in the production and consumption of ATP and NADPH manifest themselves as transient instability in the chlorophyll fluorescence, P700, electrochromic shift and CO2 uptake signals recorded on leaves. These oscillations can be induced in wild-type plants by sudden shifts in CO2 concentration or light intensity, however mutants exhibiting increased oscillatory behaviour have yet to be reported. This has precluded an understanding of the regulatory mechanisms employed by plants to suppress oscillations. Here we show that the Arabidopsis pgr5 mutant, which is deficient in PGR5-dependent cyclic electron transfer (CET), exhibits increased oscillatory behaviour. In contrast, mutants lacking the NDH-dependent CET are largely unaffected. The absence of oscillations in the hope2 mutant, which like pgr5, lacks photosynthetic control and exhibits high ATP synthase conductivity, ruled out loss of these photoprotective mechanisms as causes. Instead, we observed slower formation of proton motive force and by inference ATP synthesis in pgr5 following environmental perturbation, leading to the transient reduction of the electron transfer chain and photosynthetic oscillations. PGR5-dependent CET therefore plays a major role in damping the effect of environmental perturbations on photosynthesis to avoid losses in CO2 fixation.

plant biology↗

Supercharged PGR5-dependent cyclic electron transfer compensates for mis-regulated chloroplast ATP synthase

The light reactions of photosynthesis couple electron and proton transfers across the thylakoid membrane, generating NADPH, and proton motive force (pmf) that powers the endergonic synthesis of ATP by ATP synthase. ATP and NADPH are required for CO2 fixation into carbohydrates by the Calvin-Benson-Bassham cycle (CBBC). The dominant {Delta}pH component of the pmf also plays a photoprotective role in regulating photosystem II (PSII) light harvesting efficiency, through non-photochemical quenching (NPQ), and cytochrome b6f (cytb6f) to photosystem I (PSI) electron transfer, via photosynthetic control. {Delta}pH can be adjusted by increasing the proton influx into the thylakoid lumen via upregulation of cyclic electron transfer (CET) or decreasing proton efflux via downregulation of ATP synthase conductivity (gH+). The interplay and relative contributions of these two elements of {Delta}pH control to photoprotection are not well understood. Here, we show that an Arabidopsis ATP synthase mutant (hope2) with 40% higher proton efflux, has supercharged CET. Double crosses of hope2 with the CET-deficient pgr5 and ndho lines reveal that PGR5-dependent CET is the major pathway contributing to higher proton influx. PGR5-dependent CET allows hope2 to maintain wild-type levels of {Delta}pH, CO2 fixation and NPQ, however photosynthetic control remains absent, and PSI is acceptor-side limited. Therefore, high CET in the absence of ATP synthase regulation is insufficient for PSI photoprotection.

plant biology↗