The human 2-cys peroxiredoxins form widespread, cysteine-dependent-and isoform-specific protein-protein interactions

Publication date

2021-04

Authors

van Dam, Loes
Pagès-Gallego, Marc
Polderman, Paulien E.
van Es, Robert M.
Burgering, Boudewijn M TORCID 0000-0002-4044-9596ISNI 0000000391409962
Vos, Harmjan R.
Dansen, TobiasORCID 0000-0001-5259-8815ISNI 0000000394902015

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Article
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Abstract

Redox signaling is controlled by the reversible oxidation of cysteine thiols, a post-translational modification triggered by H2O2 acting as a second messenger. However, H2O2 actually reacts poorly with most cysteine thiols and it is not clear how H2O2 discriminates between cysteines to trigger appropriate signaling cascades in the presence of dedicated H2O2 scavengers like perox-iredoxins (PRDXs). It was recently suggested that peroxiredoxins act as peroxidases and facilitate H2O2-dependent oxidation of redox-regulated proteins via disulfide exchange reactions. It is un-known how the peroxiredoxin-based relay model achieves the selective substrate targeting required for adequate cellular signaling. Using a systematic mass-spectrometry-based approach to iden-tify cysteine-dependent interactors of the five human 2-Cys peroxiredoxins, we show that all five human 2-Cys peroxiredoxins can form disulfide-dependent heterodimers with a large set of pro-teins. Each isoform displays a preference for a subset of disulfide-dependent binding partners, and we explore isoform-specific properties that might underlie this preference. We provide evidence that peroxiredoxin-based redox relays can proceed via two distinct molecular mechanisms. Alto-gether, our results support the theory that peroxiredoxins could play a role in providing not only reactivity but also selectivity in the transduction of peroxide signals to generate complex cellular signaling responses.

Keywords

Cysteine sulfenic acid, Hydrogen peroxide, Peroxiredoxin, Protein thiol oxidation, Redox proteomics, Redox relay, Redox signaling, S-peroxiredoxinylation, Thiol disulfide exchange, Biochemistry, Physiology, Molecular Biology, Clinical Biochemistry, Cell Biology

Citation

van Dam, L, Pagès-Gallego, M, Polderman, P E, van Es, R M, Burgering, B M T, Vos, H R & Dansen, T B 2021, 'The human 2-cys peroxiredoxins form widespread, cysteine-dependent-and isoform-specific protein-protein interactions', Antioxidants, vol. 10, no. 4, 627. https://doi.org/10.3390/antiox10040627