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1.
Plant J ; 87(6): 654-63, 2016 09.
Article in English | MEDLINE | ID: mdl-27233821

ABSTRACT

The chloroplast ATP synthase is known to be regulated by redox modulation of a disulfide bridge on the γ-subunit through the ferredoxin-thioredoxin regulatory system. We show that a second enzyme, the recently identified chloroplast NADPH thioredoxin reductase C (NTRC), plays a role specifically at low irradiance. Arabidopsis mutants lacking NTRC (ntrc) displayed a striking photosynthetic phenotype in which feedback regulation of the light reactions was strongly activated at low light, but returned to wild-type levels as irradiance was increased. This effect was caused by an altered redox state of the γ-subunit under low, but not high, light. The low light-specific decrease in ATP synthase activity in ntrc resulted in a buildup of the thylakoid proton motive force with subsequent activation of non-photochemical quenching and downregulation of linear electron flow. We conclude that NTRC provides redox modulation at low light using the relatively oxidizing substrate NADPH, whereas the canonical ferredoxin-thioredoxin system can take over at higher light, when reduced ferredoxin can accumulate. Based on these results, we reassess previous models for ATP synthase regulation and propose that NTRC is most likely regulated by light. We also find that ntrc is highly sensitive to rapidly changing light intensities that probably do not involve the chloroplast ATP synthase, implicating this system in multiple photosynthetic processes, particularly under fluctuating environmental conditions.


Subject(s)
Arabidopsis Proteins/metabolism , Arabidopsis/metabolism , Chloroplasts/metabolism , Thioredoxin-Disulfide Reductase/metabolism , Arabidopsis/genetics , Arabidopsis Proteins/genetics , Chloroplast Proton-Translocating ATPases/metabolism , Gene Knockout Techniques , Light , Mutation , Oxidation-Reduction , Photosynthesis , Thioredoxin-Disulfide Reductase/genetics
2.
Plant J ; 81(6): 884-94, 2015 Mar.
Article in English | MEDLINE | ID: mdl-25619921

ABSTRACT

Over-reduction of the photosynthetic electron transport chain may severely damage the photosynthetic apparatus as well as other constituents of the chloroplast and the cell. Here, we exposed Arabidopsis leaves to saturating light either under normal atmospheric conditions or under CO2--and O2 -limiting conditions, which greatly increase excitation and electron pressures by draining terminal electron acceptors. The two treatments were found to have very different, often opposing, effects on the structure of the thylakoid membranes, including the width of the granal lumenal compartment. Modulation of the latter is proposed to be related to movements of ions across the thylakoid membrane, which alter the relative osmolarity of the lumen and stroma and affect the partitioning of the proton motive force into its electrical and osmotic components. The resulting changes in thylakoid organization and lumenal width should facilitate the repair of photodamaged photosystem II complexes in response to light stress under ambient conditions, but are expected to inhibit the repair cycle when the light stress occurs concurrently with CO2 and O2 depletion. Under the latter conditions, the changes in thylakoid structure are predicted to complement other processes that restrict the flow of electrons into the high-potential chain, thus moderating the production of deleterious reactive oxygen species at photosystem I.


Subject(s)
Arabidopsis/physiology , Carbon Dioxide/metabolism , Oxygen/metabolism , Thylakoids/physiology , Arabidopsis/radiation effects , Arabidopsis/ultrastructure , Electron Transport , Light , Oxidative Stress , Photosynthesis/physiology , Photosystem I Protein Complex/metabolism , Photosystem II Protein Complex/metabolism , Plant Leaves/physiology , Plant Leaves/radiation effects , Plant Leaves/ultrastructure , Thylakoids/radiation effects , Thylakoids/ultrastructure
3.
Nat Commun ; 15(1): 4842, 2024 Jun 06.
Article in English | MEDLINE | ID: mdl-38844786

ABSTRACT

Carbon capture and biochemical storage are some of the primary drivers of photosynthetic yield and productivity. To elucidate the mechanisms governing carbon allocation, we designed a photosynthetic light response test system for genetic and metabolic carbon assimilation tracking, using microalgae as simplified plant models. The systems biology mapping of high light-responsive photophysiology and carbon utilization dynamics between two variants of the same Picochlorum celeri species, TG1 and TG2 elucidated metabolic bottlenecks and transport rates of intermediates using instationary 13C-fluxomics. Simultaneous global gene expression dynamics showed 73% of the annotated genes responding within one hour, elucidating a singular, diel-responsive transcription factor, closely related to the CCA1/LHY clock genes in plants, with significantly altered expression in TG2. Transgenic P. celeri TG1 cells expressing the TG2 CCA1/LHY gene, showed 15% increase in growth rates and 25% increase in storage carbohydrate content, supporting a coordinating regulatory function for a single transcription factor.


Subject(s)
Carbon , Light , Photosynthesis , Transcription Factors , Carbon/metabolism , Transcription Factors/metabolism , Transcription Factors/genetics , Microalgae/metabolism , Microalgae/genetics , Microalgae/growth & development , Gene Expression Regulation, Plant/radiation effects
4.
Nat Commun ; 5: 5439, 2014 Nov 13.
Article in English | MEDLINE | ID: mdl-25451040

ABSTRACT

Many photosynthetic organisms globally, including crops, forests and algae, must grow in environments where the availability of light energy fluctuates dramatically. How photosynthesis maintains high efficiency despite such fluctuations in its energy source remains poorly understood. Here we show that Arabidopsis thaliana K(+) efflux antiporter (KEA3) is critical for high photosynthetic efficiency under fluctuating light. On a shift from dark to low light, or high to low light, kea3 mutants show prolonged dissipation of absorbed light energy as heat. KEA3 localizes to the thylakoid membrane, and allows proton efflux from the thylakoid lumen by proton/potassium antiport. KEA3's activity accelerates the downregulation of pH-dependent energy dissipation after transitions to low light, leading to faster recovery of high photosystem II quantum efficiency and increased CO2 assimilation. Our results reveal a mechanism that increases the efficiency of photosynthesis under fluctuating light.


Subject(s)
Adaptation, Physiological/physiology , Arabidopsis Proteins/metabolism , Arabidopsis , Environment , Light , Photosynthesis/physiology , Potassium-Hydrogen Antiporters/metabolism , Body Temperature Regulation , Down-Regulation , Photosystem II Protein Complex/metabolism
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