Development of a genetically encoded supersulfide-dependent translocation reporter

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Abstract

Supersulfides are emerging sulfur-containing signaling molecules involved in redox regulation, mitochondrial function, and protein S-sulfhydration. However, their dynamic behavior in living mammalian systems remains poorly understood because existing analytical methods require destructive sample preparation or lack sufficient intracellular applicability. Here, we developed a genetically encoded supersulfide-dependent translocation reporter (SuTR) for mammalian cells and in vivo imaging. Although the previously reported probe psGFP failed to respond to supersulfides in mammalian cells, fusion of psGFP with the sulfide-responsive transcriptional repressor (SqrR) generated SuTR, a novel reporter that exhibited supersulfide-dependent translocation from the nucleus to the cytoplasm. Na₂S₂ and Na₂S₃ induced dose-dependent cytosolic translocation of SuTR, whereas Na₂S showed no effect. Fluorescence recovery after photobleaching (FRAP) analysis revealed accelerated fluorescence recovery shortly after supersulfide stimulation, and overexpression of the endogenous supersulfide-producing enzyme Cysteinyl-tRNA Synthetase 2 (CARS2) similarly altered reporter dynamics. Mutational analyses demonstrated that reporter responsiveness depends on the DNA-binding activity of SqrR. Furthermore, SuTR successfully detected supersulfide induction in mouse liver in vivo following Na₂S₃ administration. These findings establish SuTR as a genetically encoded reporter for monitoring supersulfide dynamics in mammalian cells and tissues.

Highlights

  • We developed SuTR, a genetically encoded supersulfide-dependent translocation reporter.

  • Supersulfides induce nuclear-to-cytoplasmic translocation of SuTR

  • FRAP enables rapid detection of endogenous and exogenous supersulfide responses

  • SuTR activity depends on the DNA-binding function of SqrR

  • SuTR enables visualization of supersulfide dynamics in mouse liver in vivo

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