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Biology subjects

Lasarzewski, Y.

Publications and source records attributed to Lasarzewski, Y..

2 recordsLinked to original sources

Stress adaptation of mitochondrial protein import by OMA1-mediated degradation of DNAJC15

Mitochondria adapt to cellular stress to ensure cell survival. The stress-regulated mitochondrial peptidase OMA1 orchestrates these adaptive responses, which limit mitochondrial fusion and promote mitochondrial stress signaling and metabolic rewiring. Here, we show that cellular stress adaptation involves OMA1-mediated regulation of mitochondrial protein import and OXPHOS biogenesis. OMA1 cleaves the mitochondrial chaperone DNAJC15 and promotes its degradation by the m-AAA protease AFG3L2. Loss of DNAJC15 reduces the import of OXPHOS-related proteins via the TIMM23-TIMM17A protein translocase, limiting OXPHOS biogenesis under conditions of mitochondrial dysfunction. Non-imported mitochondrial preproteins accumulate at the endoplasmic reticulum and induce an ATF6-related unfolded protein response. Our results demonstrate stress-dependent changes in protein import specificity as part of the OMA1-mediated mitochondrial stress response and highlight the interdependence of proteostasis regulation between different organelles.

cell biology↗

AFG3L2-mediated proteolysis restricts mitochondrial biogenesis and gene expression in hypoxia

Mitochondria are metabolically rewired in hypoxia when cells switch to glycolytic growth. In addition to the well-established role of transcriptional and translational programs, there is increasing evidence that post-translational mechanisms contribute to the rapid adaptation of the mitochondrial proteome to hypoxia. Here, we have used a proteomic survey to define how the m-AAA protease AFG3L2, a proteolytic complex in the inner mitochondrial membrane, regulates mitochondrial proteostasis. Our experiments identify a broad spectrum of mitochondrial substrate proteins and show that AFG3L2 is activated in hypoxia along an HIF1-mTORC1 signaling axis. AFG3L2-mediated proteolysis restricts mitochondrial biogenesis and gene expression by degrading proteins, which are involved in mitochondrial protein import, mitochondrial transcription, mRNA processing, mRNA modification and stability, and RNA granule formation. Our experiments highlight the important contribution of proteolytic rewiring of the mitochondrial proteome for the adaptation to low oxygen tension and shed new light on the pathophysiology of several neurodegenerative disorders associated with mutations in AFG3L2.

cell biology↗