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Spatial and temporal alterations in protein structure by EGF regulate cryptic cysteine oxidation.

Citation
Behring, J. B., et al. “Spatial And Temporal Alterations In Protein Structure By Egf Regulate Cryptic Cysteine Oxidation.”. Science Signaling.
Center Washington University in St Louis
Author Jessica B Behring, Sjoerd van der Post, Arshag D Mooradian, Matthew J Egan, Maxwell I Zimmerman, Jenna L Clements, Gregory R Bowman, Jason M Held
Abstract

Stimulation of plasma membrane receptor tyrosine kinases (RTKs), such as the epidermal growth factor receptor (EGFR), locally increases the abundance of reactive oxygen species (ROS). These ROS then oxidize cysteine residues in proteins to potentiate downstream signaling. Spatial confinement of ROS is an important regulatory mechanism of redox signaling that enables the stimulation of different RTKs to oxidize distinct sets of downstream proteins. To uncover additional mechanisms that specify cysteines that are redox regulated by EGF stimulation, we performed time-resolved quantification of the EGF-dependent oxidation of 4200 cysteine sites in A431 cells. Fifty-one percent of cysteines were statistically significantly oxidized by EGF stimulation. Furthermore, EGF induced three distinct spatiotemporal patterns of cysteine oxidation in functionally organized protein networks, consistent with the spatial confinement model. Unexpectedly, protein crystal structure analysis and molecular dynamics simulations indicated widespread redox regulation of cryptic cysteine residues that are solvent exposed only upon changes in protein conformation. Phosphorylation and increased flux of nucleotide substrates served as two distinct modes by which EGF specified the cryptic cysteine residues that became solvent exposed and redox regulated. Because proteins that are structurally regulated by different RTKs or cellular perturbations are largely unique, these findings suggest that solvent exposure and redox regulation of cryptic cysteine residues contextually delineate redox signaling networks.

Year of Publication
2020
Journal
Science signaling
Volume
13
Issue
615
Date Published
12/2020
ISSN Number
1937-9145
DOI
10.1126/scisignal.aay7315
Alternate Journal
Sci Signal
PMID
31964804
PMCID
PMC7263378
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