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Keisar, M.

Publications and source records attributed to Keisar, M..

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ACHT2 deactivates carbon assimilation during light-dark transition

In chloroplasts, photosynthetic efficiency relies on a delicate balance between reductive and oxidative thiol-based signaling networks. Members of the high-midpoint-potential atypical thioredoxins (Trxs) were shown to oxidize photosynthetic enzymes by channeling reducing equivalents to H2O2 through 2-Cys-Prx activity. However, it remains unclear which atypical-Trx isoforms regulate Calvin-Benson cycle (CBC) inactivation, and whether they possess distinct functional specificities or operate redundantly in vivo. To resolve this, electron transport and carbon assimilation were continuously monitored during physiological dynamic light transitions in CRISPR-generated single, double and triple atypical Trx mutants. Notably, ACHT2 was identified as a primary determinant of CBC inactivation during dark-to-light transitions, as evidenced by the alleviation of redox-mediated bottlenecks in electron flow downstream of Fd and a lower CBC inactivation state in acht2 plants, resembling the phenotype observed in plants lacking 2-Cys Prxs A and B (2cpab). In contrast, plants mutated in ACHT1, ACHT4, or TrxL2 displayed CBC inactivation kinetics comparable to those of the wild type. Furthermore, mutation of ACHT2 did not compromise plant fitness. In contrast, growth retardation was observed in the acht1/acht4 double mutant, suggesting that the severe phenotype of 2cpab does not arise from impaired CBC inactivation, but rather from disruption of oxidative regulation of other metabolic pathways mediated by distinct atypical Trxs. Collectively, these findings reveal a high degree of regulatory specificity within the chloroplast oxidative network and provide a foundation for a deeper understanding of how activation-inactivation cycles contribute to plant adaptation to dynamic light environments.

plant biology↗