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Mutation of a stromal C-terminal threonine residue of Photosystem II subunit S slows down NPQ induction and speeds up relaxation.

In order to prevent damage by excess light, light harvesting antennae can switch to an energy dissipative mode (termed non-photochemical quenching, NPQ). In higher plants, this switch is facilitated by the presence of Photosystem II subunit S (PsbS) protein, which was discovered 25 years ago. While the role of PsbS in induction of NPQ was soon found to require protonation of key glutamate residues facing the thylakoid lumen, a complete understanding of how NPQ is subsequently initiated is still lacking. Recent work on Norway spruce suggests that reversible phosphorylation at a few conserved residues of PsbS may affect its role in regulation of NPQ. Here we assessed PsbS phosphorylation changes in Arabidopsis thaliana plants, but these remained undetectable under control and combined chilling and high light stress conditions. We therefore used a genetic approach to assess potential functional implications of phosphorylation at threonine-259 (T259). Functional evaluation of point mutations at T259 in the background of PsbS knock-out mutant npq4 showed that neither phosphomimetic, phosphosubstitution, nor phosphonull substitutions could rescue NPQ activity to the level of the unperturbed protein, inconsistent with regulation via reversible phosphorylation. Instead, all residue substitutions at T259 gave rise to significantly impaired induction and accelerated NPQ recovery, while protein accumulation and thylakoid membrane localisation were not affected. We suggest that these results point to a role for the C-terminus in the propensity or stability of hydrophobic interactions between PsbS and LHCII antenna proteins to initiate the quenched state.

Photosystem II subunit S

Genome-scale insights into metabolic streamlining and photosynthetic energy balance in the extremophile green alga Picocystis salinarum (Picocystophyceae, Chlorophyta).

Picocystis salinarum is an early-diverging chlorophyte and the sole described member of the Picocystophyceae, frequently dominating hypersaline and alkaline lakes despite extreme physicochemical constraints. To elucidate the genomic foundations of its ecological success, we generated a fully annotated, chromosome-scale nuclear genome assembly of the type strain originally isolated from a saline pond in San Francisco Bay. The 18.5-Mb genome comprises 30 chromosomal assemblies, exhibits clear diploidy, and contains multiple copies of intact Ty3/Gypsy and Ty1/Copia long terminal repeat retrotransposons encoding polyproteins with atypical accessory domains. Phylogenomic analyses reveal strong affinity with the Nephroselmidophyceae. Comparative analyses reveal extensive metabolic streamlining, including the absence of a queuosine salvage pathway, the 2-methylcitrate cycle, β-oxidation of propionate, and branched-chain amino acid catabolism, traits retained in several marine prasinophyte lineages. In contrast, the genome preserves multiple ancestral bacterial derived systems. Notably, P. salinarum features a complete chloroplast NADH dehydrogenase-like complex, including all membrane, electron binding, and assembly components, a configuration not previously reported in sequenced chlorophyte algae. This retention implies substantial capacity for cyclic electron flow and chlororespiration, processes expected to be critical in chronically low-light and chemically extreme environments. The genome further reveals a distinctive biochemical CO2-concentrating mechanism centered on plastid-targeted phosphoenolpyruvate carboxykinase, complete plastid peptidoglycan biosynthetic and remodeling pathways, and partial retention of lipid-A-related machinery. Conversely, P. salinarum lacks canonical non-photochemical quenching proteins while retaining xanthophyll-cycle enzymes that support slower photoprotective responses. Together, these features define a coordinated genomic architecture that underpins the specialization of P. salinarum to hypersaline, alkaline, and persistently low-light ecosystems.

3‐deoxy‐D‐manno‐octulo

Impact of the Simultaneous Loss of the Plastid Envelope-Localized Homologous Pair Ycf10 and DLDG1 in Plant Growth and Photosynthetic Performance.

Ycf10 and DLDG1 are homologous proteins embedded in the chloroplast envelope membranes (EM) and encoded in the plastidial and nuclear genomes, respectively. We previously characterized Arabidopsis dldg1 and tobacco ycf10 mutants, and showed that these proteins mediate proton transport across the EM, thereby influencing ATP synthesis and the non-photochemical quenching (NPQ) induction. However, the consequences of the simultaneous loss of Ycf10/DLDG1 homologs have remained unclear. Here, we generated and analyzed Arabidopsis ycf10 and ycf10-dldg1 double mutants. These mutants exhibited a pale-green phenotype under continuous light conditions, which was complemented by the exogenous addition of NaCl, as previously observed in mutants lacking the plastid EM-localized K+/H+ antiporters KEA1 and KEA2. Both single mutants (ycf10 and dldg1), as well as the ycf10-dldg1 double mutant, showed enhanced NPQ induction compared with wild-type. Furthermore, the ycf10-dldg1 double mutant showed stronger NPQ induction than either single mutant upon transition from dark to light, suggesting that Ycf10 and DLDG1 function independently while playing redundant roles. These mutants also showed reduced stomatal conductance and sugar accumulation compared with the wild-type. Together, these findings indicate that EM-localized DLDG1 and Ycf10 act in concert to maintain chloroplast proton/ion homeostasis, contributing to chloroplast pH homeostasis for sustaining plant growth and efficient photosynthesis.

Photosynthesis