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Sensing and signaling of oxidative stress in chloroplasts by inactivation of the SAL1 phosphoadenosine phosphatase
Author(s) -
Kai Xun Chan,
Peter D. Mabbitt,
Su Yin Phua,
Jonathan Wolf Mueller,
Nazia Nisar,
Tamara Gigolashvili,
Elke Stroeher,
Julia Grassl,
Wiebke Arlt,
Gonzalo M. Estavillo,
Colin J. Jackson,
Barry J. Pogson
Publication year - 2016
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1604936113
Subject(s) - retrograde signaling , chloroplast , biology , arabidopsis thaliana , biochemistry , arabidopsis , phosphatase , oxidative stress , oxidative phosphorylation , organelle , plastid , signal transduction , microbiology and biotechnology , gene , enzyme , mutant
Intracellular signaling during oxidative stress is complex, with organelle-to-nucleus retrograde communication pathways ill-defined or incomplete. Here we identify the 3'-phosphoadenosine 5'-phosphate (PAP) phosphatase SAL1 as a previously unidentified and conserved oxidative stress sensor in plant chloroplasts. Arabidopsis thaliana SAL1 (AtSAL1) senses changes in photosynthetic redox poise, hydrogen peroxide, and superoxide concentrations in chloroplasts via redox regulatory mechanisms. AtSAL1 phosphatase activity is suppressed by dimerization, intramolecular disulfide formation, and glutathionylation, allowing accumulation of its substrate, PAP, a chloroplast stress retrograde signal that regulates expression of plastid redox associated nuclear genes (PRANGs). This redox regulation of SAL1 for activation of chloroplast signaling is conserved in the plant kingdom, and the plant protein has evolved enhanced redox sensitivity compared with its yeast ortholog. Our results indicate that in addition to sulfur metabolism, SAL1 orthologs have evolved secondary functions in oxidative stress sensing in the plant kingdom.

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