Structural insights into redox-active cysteine residues of the Src family kinases.

Redox Biol

Department of Chemistry, University at Buffalo, State University of New York, 515 Natural Sciences Complex, Buffalo, NY, 14260, USA. Electronic address:

Published: May 2021

AI Article Synopsis

  • The Src Family Kinases (SFKs) are crucial for cellular signaling and are important targets for drug development, with their activity being regulated by protein phosphorylation.
  • Cysteine residues in SFKs can be oxidized, affecting their function, and this study reviews how their structural environments influence this oxidation.
  • Cysteines in conserved positions are less reactive due to being in hydrophobic areas, while non-conserved cysteines, found in solvent-accessible regions, are more reactive, highlighting the need for further research on redox-sensitivity in proteins.

Article Abstract

The Src Family Kinases (SFKs) are pivotal regulators of cellular signal transduction and highly sought-after targets in drug discovery. Their actions within cells are controlled by alterations in protein phosphorylation that switch the SFKs from autoinhibited to active states. The SFKs are also well recognized to contain redox-active cysteine residues where oxidation of certain residues directly contribute to kinase function. To more completely understand the factors that influence cysteine oxidation within the SFKs, a review is presented of the local structural environments surrounding SFK cysteine residues compared to their quantified oxidation in vivo from the Oximouse database. Generally, cysteine local structure and degree of redox sensitivity vary with respect to sequence conservation. Cysteine residues found in conserved positions are more mildly redox-active as they are found in hydrophobic environments and not fully exposed to solvent. Non-conserved redox-active cysteines are generally the most reactive with direct solvent access and/or in hydrophilic environments. Results from this analysis motivate future efforts to conduct comprehensive proteome-wide analysis of redox-sensitivity, conservation, and local structural environments of proteins containing reactive cysteine residues.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC8022254PMC
http://dx.doi.org/10.1016/j.redox.2021.101934DOI Listing

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