Chemical Approaches to Discovery and Study of Sources and Targets of Hydrogen Peroxide Redox Signaling Through NADPH Oxidase Proteins

Author:

Brewer Thomas F.1,Garcia Francisco J.2,Onak Carl S.1,Carroll Kate S.2,Chang Christopher J.1345

Affiliation:

1. Department of Chemistry,

2. Department of Chemistry, The Scripps Research Institute, Jupiter, Florida 33458;

3. Department of Molecular and Cell Biology,

4. Howard Hughes Medical Institute, and

5. Helen Wills Neuroscience Institute, University of California, Berkeley, California 94720;

Abstract

Hydrogen peroxide (H2O2) is a prime member of the reactive oxygen species (ROS) family of molecules produced during normal cell function and in response to various stimuli, but if left unchecked, it can inflict oxidative damage on all types of biological macromolecules and lead to cell death. In this context, a major source of H2O2 for redox signaling purposes is the NADPH oxidase (Nox) family of enzymes, which were classically studied for their roles in phagocytic immune response but have now been found to exist in virtually all mammalian cell types in various isoforms with distinct tissue and subcellular localizations. Downstream of this tightly regulated ROS generation, site-specific, reversible covalent modification of proteins, particularly oxidation of cysteine thiols to sulfenic acids, represents a prominent posttranslational modification akin to phosphorylation as an emerging molecular mechanism for transforming an oxidant signal into a dynamic biological response. We review two complementary types of chemical tools that enable (a) specific detection of H2O2 generated at its sources and (b) mapping of sulfenic acid posttranslational modification targets that mediate its signaling functions, which can be used to study this important chemical signal in biological systems.

Publisher

Annual Reviews

Subject

Biochemistry

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