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Protein persulfidation in plants: mechanisms and functions beyond a simple stress response.

Anna MoselerStephan WagnerAndreas J Meyer
Published in: Biological chemistry (2024)
Posttranslational modifications (PTMs) can modulate the activity, localization and interactions of proteins and (re)define their biological function. Understanding how changing environments can alter cellular processes thus requires detailed knowledge about the dynamics of PTMs in time and space. A PTM that gained increasing attention in the last decades is protein persulfidation, where a cysteine thiol (-SH) is covalently bound to sulfane sulfur to form a persulfide (-SSH). The precise cellular mechanisms underlying the presumed persulfide signaling in plants are, however, only beginning to emerge. In the mitochondrial matrix, strict regulation of persulfidation and H 2 S homeostasis is of prime importance for maintaining mitochondrial bioenergetic processes because H 2 S is a highly potent poison for cytochrome c oxidase. This review summarizes the current knowledge about protein persulfidation and corresponding processes in mitochondria of the model plant Arabidopsis. These processes will be compared to the respective processes in non-plant models to underpin similarities or highlight apparent differences. We provide an overview of mitochondrial pathways that contribute to H 2 S and protein persulfide generation and mechanisms for H 2 S fixation and de-persulfidation. Based on current proteomic data, we compile a plant mitochondrial persulfidome and discuss how persulfidation may regulate protein function.
Keyphrases
  • oxidative stress
  • protein protein
  • healthcare
  • binding protein
  • magnetic resonance imaging
  • machine learning
  • working memory
  • magnetic resonance
  • deep learning
  • living cells