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Published on: June 21, 2021
Bioorthogonal Probe BTD-Az Enables Sensitive and Rapid In Vivo Profiling of Protein Cysteine Sulfenylation
Mingyou Xu1,2,3, Chunxu Wang2,3,4, Ruyi Liu2,3,4
1Department of Orthopedics, The First Affiliated Hospital of USTC, Division of Life Sciences and Medicine, University of Science and Technology of China, Hefei, Anhui 230001, China.
None:
Cysteine sulfenylation (Cys-SOH) is a transient redox-sensitive post-translational modification that regulates protein activity and cellular stress responses, yet its in vivo dynamics remain difficult to capture due to short half-life and low abundance. Here, we report the design and application of BTD-Az, a cell-permeable probe that incorporates an azide handle into the benzothiazine scaffold, enabling rapid bioorthogonal labeling of Cys-SOH both in vivo and in vitro, followed by efficient enrichment through strain-promoted azide-alkyne cycloaddition. This approach streamlines the detection and analysis of Cys-SOH with exceptional specificity and convenience. BTD-Az exhibited negligible cytotoxicity, efficiently enriched sulfenylated proteins in vitro, and achieved direct in vivo labeling in mouse tissues through SPAAC-mediated pull-down. Coupling BTD-Az with 4D-DIA proteomics allowed global sulfenylome profiling, revealing >5000 labeled proteins across tissues. As a proof-of-concept biological application, we applied BTD-Az to aging cartilage and identified 95 proteins with differential sulfenylation, including the mitochondrial enzyme IDH2, whose Cys-SOH modification promoted proteasomal degradation and exacerbated redox imbalance. Collectively, this study establishes BTD-Az as a robust chemical tool for in vivo sulfenylation profiling, providing a broadly applicable platform for redox proteomics and the discovery of redox-sensitive regulatory mechanisms in health and disease.

