Endogenous hydrogen sulfide regulates xCT stability through persulfidation of OTUB1 at cysteine 91 in colon cancer cells

Neoplasia. 2021 May;23(5):461-472. doi: 10.1016/j.neo.2021.03.009. Epub 2021 Apr 18.

Abstract

Increased xCT and transsulfuration pathway has been associated with metabolic reprogramming of colorectal cancer. However, the correlation between these 2 events and the underlying molecular mechanism remains obscure. xCT expression was determined in tissue microarrays of colorectal cancer. RNA sequencing and functional assays in vitro was adopted to delineate the involvement of transsulfuration pathway in the proper function of xCT in maintaining the chemoresistant phenotype. The synthetic lethality of blocking xCT and the transsulfuration pathway was investigated both in vitro and in vivo. The up-regulation of the transsulfuration pathway after inhibiting xCT in colon cancer cells was evident and exogenous H2S partially reversed the loss of chemoresistance phenotype after inhibiting xCT. Mechanistically, CTH derived H2S increased the stability of xCT through persulfidation of OTU domain-containing ubiquitin aldehyde-binding protein 1 at cysteine 91. AOAA and Erastin resulted in synthetic lethality both in vitro and in vivo, which was mediated through increased ferroptosis and apoptosis. Our findings suggest that a reciprocal regulation exists between xCT and the transsulfuration pathway, which is a targetable metabolic vulnerability. Mechanistically, CTH derived H2S increased the stability of xCT through persulfidation of OTU domain-containing ubiquitin aldehyde-binding protein 1 at cysteine 91.

Keywords: Ferroptosis; Hydrogen sulfide; OTUB1; Synthetic lethality; xCT.

Publication types

  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amino Acid Transport System y+ / chemistry
  • Amino Acid Transport System y+ / genetics
  • Amino Acid Transport System y+ / metabolism*
  • Animals
  • Cell Line, Tumor
  • Colonic Neoplasms / etiology
  • Colonic Neoplasms / metabolism*
  • Colonic Neoplasms / pathology
  • Cysteine / chemistry
  • Cysteine / metabolism*
  • Deubiquitinating Enzymes / metabolism*
  • Disease Models, Animal
  • Fluorouracil / pharmacology
  • Gene Expression
  • Gene Expression Regulation, Neoplastic / drug effects
  • Humans
  • Hydrogen Sulfide / metabolism*
  • Immunohistochemistry
  • Mice
  • Models, Biological
  • Protein Binding
  • Protein Processing, Post-Translational
  • Protein Stability / drug effects
  • Synthetic Lethal Mutations / genetics
  • Tissue Array Analysis

Substances

  • Amino Acid Transport System y+
  • SLC7A11 protein, human
  • Deubiquitinating Enzymes
  • OTUB1 protein, human
  • Cysteine
  • Fluorouracil
  • Hydrogen Sulfide