Redox Regulation of Mitochondrial Fission Protein Drp1 by Protein Disulfide Isomerase Limits Endothelial Senescence
Author(s) -
Young-Mee Kim,
SeockWon Youn,
Sudhahar Varadarajan,
Archita Das,
Reyhaan Chandhri,
Henar Cuervo,
Junghun Kweon,
Silvia Leanhart,
Lianying He,
Péter T. Tóth,
Jan Kitajewski,
Jalees Rehman,
Yisang Yoon,
Jaehyung Cho,
Tohru Fukai,
Masuko UshioFukai
Publication year - 2018
Publication title -
cell reports
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 6.264
H-Index - 154
eISSN - 2639-1856
pISSN - 2211-1247
DOI - 10.1016/j.celrep.2018.05.054
Subject(s) - mitochondrial fission , protein disulfide isomerase , microbiology and biotechnology , senescence , mitochondrion , fission , chemistry , autophagy , disulfide bond , biology , biochemistry , apoptosis , physics , quantum mechanics , neutron
Mitochondrial dynamics are tightly controlled by fusion and fission, and their dysregulation and excess reactive oxygen species (ROS) contribute to endothelial cell (EC) dysfunction. How redox signals regulate coupling between mitochondrial dynamics and endothelial (dys)function remains unknown. Here, we identify protein disulfide isomerase A1 (PDIA1) as a thiol reductase for the mitochondrial fission protein Drp1. A biotin-labeled Cys-OH trapping probe and rescue experiments reveal that PDIA1 depletion in ECs induces sulfenylation of Drp1 at Cys 644 , promoting mitochondrial fragmentation and ROS elevation without inducing ER stress, which drives EC senescence. Mechanistically, PDIA1 associates with Drp1 to reduce its redox status and activity. Defective wound healing and angiogenesis in diabetic or PDIA1 +/- mice are restored by EC-targeted PDIA1 or the Cys oxidation-defective mutant Drp1. Thus, this study uncovers a molecular link between PDIA1 and Drp1 oxidoreduction, which maintains normal mitochondrial dynamics and limits endothelial senescence with potential translational implications for vascular diseases associated with diabetes or aging.
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