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Ghysels, B.

Publications and source records attributed to Ghysels, B..

2 recordsLinked to original sources

Boosting chloroplast ribosome biogenesis by a plastidial DEAD-box RNA helicase is critical for high light acclimation

Photosynthetic organisms have developed sophisticated strategies to fine-tune light energy conversion to meet the metabolic demand, thereby optimizing growth in fluctuating light environments. Although mechanisms such as energy dissipation, photosynthetic control, or the photosystem II (PSII) damage and repair have been widely studied, little is known about the regulation of protein synthesis capacity during light acclimation. By screening a Chlamydomonas reinhardtii insertional mutant library using chlorophyll fluorescence imaging, we isolated a high chlorophyll fluorescence mutant (hf0) defected in a gene encoding a putative plastid targeted DEAD-box RNA helicase called CreRH22. CreRH22 is rapidly induced upon illumination and belongs to the GreenCut, a set of proteins specific to photosynthetic organisms. While photosynthesis is slightly affected in the mutant under low light (LL), exposure to high light (HL) induces a marked decrease in both PSII and PSI, and a strong alteration of the light-induced gene expression pattern. These effects are explained by the inability of hf0 to increase plastid ribosome amounts under HL. We conclude that CreRH22, by promoting ribosomal RNA precursor maturation in a light-dependent manner, enables the assembly of extra-ribosomes required to synthesize photosystem subunits at a higher rate, a critical step in the acclimation of algae to HL.

plant biology↗

Regulation of light harvesting in Chlamydomonas: two protein phosphatases are involved in state transitions

Protein phosphorylation plays important roles in short-term regulation of photosynthetic electron transfer. In a mechanism known as state transitions, the kinase STATE TRANSITION 7 (STT7) of Chlamydomonas reinhardtii phosphorylates components of light-harvesting antenna complex II (LHCII). This reversible phosphorylation governs the dynamic allocation of a part of LHCII to photosystem I or photosystem II, depending on light conditions and metabolic demands. Little is however known in the green alga on the counteracting phosphatase(s). In Arabidopsis, the homologous kinase STN7 is specifically antagonized by PROTEIN PHOSPHATASE 1/THYLAKOID-ASSOCIATED PHOSPHATASE 38 (PPH1/TAP38). Furthermore, the paralogous kinase STN8 and the countering phosphatase PHOTOSYSTEM II PHOSPHATASE (PBCP), which count subunits of PSII amongst their major targets, influence thylakoid architecture and high-light tolerance. Here we analyze state transitions in C. reinhardtii mutants of the two homologous phosphatases, CrPPH1 and CrPBCP. The transition from state 2 to state 1 is retarded in pph1, and surprisingly also in pbcp. However both mutants can eventually return to state 1. In contrast, the double mutant pph1;pbcp appears strongly locked in state 2. The complex phosphorylation patterns of the LHCII trimers and of the monomeric subunits are affected in the phosphatase mutants. Their analysis indicates that the two phosphatases have different yet overlapping sets of protein targets. The dual control of thylakoid protein de-phosphorylation and the more complex antenna phosphorylation patterns in Chlamydomonas compared to Arabidopsis are discussed in the context of the stronger amplitude of state transitions and the more diverse LHCII isoforms in the alga.

plant biology↗