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Vogiatzi, N.

Publications and source records attributed to Vogiatzi, N..

2 recordsLinked to original sources

Identifying Novel Targets of the Stringent Response in Plants and Cyanobacteria using chemoproteomics

Survival in dynamic environments requires photosynthetic organisms to rapidly sense and respond to stress. The stringent response, mediated by the signaling molecule guanosine-3,5-bisdiphosphate (ppGpp), is crucial for acclimation to environmental changes such as darkness and nitrogen limitation. While it has been extensively characterized in heterotrophic bacteria such as Escherichia coli, the molecular mechanisms and regulatory targets of ppGpp in photosynthetic organisms remain less understood. Here, we report large-scale chemoproteomic identification of ppGpp-binding proteins across plant chloroplasts and cyanobacteria, revealing both conserved and novel targets compared to E. coli. In plants, we found that ppGpp regulates pyrimidine metabolism by inhibiting the chloroplastic enzyme aspartate transcarbamoylase (PyrB). In cyanobacteria, we found that ppGpp activates glucose-1-phosphate adenylyltransferase (GlgC) involved in glycogen synthesis, activates citrate synthase (GltA), and induces carboxysome aggregation. These findings expand the known ppGpp regulatory network in photosynthetic organisms and provide a foundation for understanding how ppGpp coordinates adaptation to nutrient and environmental stresses.

systems biology↗

Molecular mechanism of redox regulation of the alpha-carboxysomal carbonic anhydrase CsoSCA

Carboxysomes are protein-based organelles that form the core of the bacterial CO2-concentrating mechanism (CCM) by elevating CO2 levels around Rubisco. They encapsulate Rubisco and carbonic anhydrase (CA) within a protein shell that, after closure, excludes cytosolic reductants. Because cytosolic CA activity would short-circuit the CCM, CA activity must be confined to the carboxysome, yet how -carboxysomes achieve this has remained unknown. Here we show that CsoSCA, the -carboxysomal CA, is redox-regulated: inactive under reducing conditions, active under oxidizing. This regulation is mediated by a conserved vicinal cysteine pair distal from the active site. CryoEM structures of Halothiobacillus neapolitanus CsoSCA under active and inactive conditions, and of an inactive cysteine variant, reveal that redox conditions modulate global conformational dynamics that reorganize the active site for catalysis. These findings advance the understanding of -carboxysome regulation and couple CsoSCA activation to lumenal oxidation during carboxysome maturation.

biochemistry↗