Nitrosative Stress and Human Disease: Therapeutic Potential of Denitrosylation

Int J Mol Sci. 2021 Sep 10;22(18):9794. doi: 10.3390/ijms22189794.

Abstract

Proteins dynamically contribute towards maintaining cellular homeostasis. Posttranslational modification regulates the function of target proteins through their immediate activation, sudden inhibition, or permanent degradation. Among numerous protein modifications, protein nitrosation and its functional relevance have emerged. Nitrosation generally initiates nitric oxide (NO) production in association with NO synthase. NO is conjugated to free thiol in the cysteine side chain (S-nitrosylation) and is propagated via the transnitrosylation mechanism. S-nitrosylation is a signaling pathway frequently involved in physiologic regulation. NO forms peroxynitrite in excessive oxidation conditions and induces tyrosine nitration, which is quite stable and is considered irreversible. Two main reducing systems are attributed to denitrosylation: glutathione and thioredoxin (TRX). Glutathione captures NO from S-nitrosylated protein and forms S-nitrosoglutathione (GSNO). The intracellular reducing system catalyzes GSNO into GSH again. TRX can remove NO-like glutathione and break down the disulfide bridge. Although NO is usually beneficial in the basal context, cumulative stress from chronic inflammation or oxidative insult produces a large amount of NO, which induces atypical protein nitrosation. Herein, we (1) provide a brief introduction to the nitrosation and denitrosylation processes, (2) discuss nitrosation-associated human diseases, and (3) discuss a possible denitrosylation strategy and its therapeutic applications.

Keywords: S-nitrosylation; denitrosylation; human disease; nitrosation; therapeutics.

Publication types

  • Review

MeSH terms

  • Glutathione / genetics
  • Humans
  • Nitric Oxide / genetics
  • Nitric Oxide / metabolism
  • Nitric Oxide Synthase / genetics*
  • Nitric Oxide Synthase / metabolism
  • Nitrosation / genetics*
  • Nitrosative Stress / genetics*
  • Oxidation-Reduction / drug effects
  • Protein Processing, Post-Translational / genetics*
  • Thioredoxins / genetics

Substances

  • Nitric Oxide
  • Thioredoxins
  • Nitric Oxide Synthase
  • Glutathione