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Charuvi, D.

Publications and source records attributed to Charuvi, D..

2 recordsLinked to original sources

ELIP is preferentially expressed in stomatal guard cells and has a role in stomatal opening upon transition to light

Plant early light-induced proteins (ELIPs) are chlorophyll-binding thylakoid membrane proteins commonly believed to function in photoprotection. However, results of studies with mutants or transgenic plants have been contradictory regarding this function, and the mechanistic workings of ELIPs have mostly remained elusive. We studied: (1) ELIP function in tomato (Solanum lycoperiscum) by generation and photosynthetic/physiological characterization of slelip mutants under various light conditions; and (2) ELIP tissue/cell localization by monitoring expression of the Venus yellow fluorescent protein fused to the native SlELIP1 promoter ( pSlELIP1::Venus) in transgenic tomato. Notably, slelip mutants did not display compromised photosynthetic performance and were not more sensitive to photoinhibition compared to parental plants, even following direct sunlight exposure. Surprisingly, pSlELIP1::Venus fusions revealed preferential expression in the leaf epidermis and specifically in stomatal guard cells, with no apparent expression in the mesophyll. No major alterations were observed in leaf gas exchange in slelip mutants at different light conditions. Intriguingly, stomatal conductance was reduced in slelip mutants upon the transition from dark to light. We propose an alternative hypothesis for plant ELIPs as players in the response of guard cells to light, connecting chlorophyll to stomatal function, and presenting a novel research direction for these enigmatic proteins.

plant biology↗

The thylakoid lumen Deg1 protease affects non-photochemical quenching via the levels of violaxanthin de-epoxidase and PsbS

Non-photochemical quenching (NPQ), the dissipation of excess light energy as heat, has been long recognized as a major protective mechanism that minimizes the potential for oxidative damage to photosystem II (PSII) reaction centers. Two major positive contributors to NPQ are the carotenoid zeaxanthin, generated from violaxanthin by the enzyme violaxanthin de-epoxidase (VDE or NPQ1), and the thylakoid protein PsbS (NPQ4). The involvement of the lumenal Deg proteases in the repair of PSII from photoinhibition prompted us to further explore their possible role in other responses of Arabidopsis thaliana to high light. Here we show that upon exposure to high light, the single deg1 and the triple deg158 mutants display different levels and kinetics of NPQ, compared to the deg58 mutant and WT that behave alike. In response to high light, the two genotypes lacking Deg1 over-accumulate NPQ1 and NPQ4. After temporal inhibition of protein translation in vivo, the level of these two proteins in deg1 is higher than in WT. Together, the results suggest that Deg1 represents a new level of regulation of the NPQ process through adjusting the quantity of NPQ1 and NPQ4 proteins, probably through their proteolysis.

plant biology↗