Identification of Peroxisome-Derived Hydrogen Peroxide-Sensitive Target Proteins Using a YAP1C-Based Genetic Probe

Methods Mol Biol. 2023:2643:161-181. doi: 10.1007/978-1-0716-3048-8_12.

Abstract

As the reversible oxidation of protein cysteine thiols is an important mechanism in signal transduction, it is essential to have access to experimental approaches that allow for spatiotemporal indexing of the cellular sulfenome in response to local changes in H2O2 levels. Here, we provide a step-by-step guide for enriching and identifying the sulfenome of mammalian cells at the subcellular level in response to peroxisome-derived H2O2 by the combined use of (i) a previously developed cell line in which peroxisomal H2O2 production can be induced in a time- and dose-dependent manner; (ii) YAP1C, a genetically encoded yeast AP-1-like transcription factor-based probe that specifically reacts with S-sulfenylated cysteines and traps them through mixed disulfide bonds; and (iii) mass spectrometry. Given that this approach includes differential labeling of reduced and reversibly oxidized cysteine residues, it can also provide additional information on the positions of the modified cysteines. Gaining more in-depth insight into the complex nature of how alterations in peroxisomal H2O2 metabolism modulate the cellular sulfenome is key to our understanding of how these organelles act as redox signaling hubs in health and disease.

Keywords: Hydrogen peroxide; Peroxisomes; Proteomics; Redox signaling; S-sulfenylation; Sulfenome mining; YAP1C.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Cysteine* / metabolism
  • Hydrogen Peroxide* / metabolism
  • Mammals / metabolism
  • Oxidation-Reduction
  • Peroxisomes / metabolism
  • Proteins / metabolism
  • Sulfhydryl Compounds / metabolism

Substances

  • Cysteine
  • Hydrogen Peroxide
  • Proteins
  • Sulfhydryl Compounds