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June 3, 2026Acta Crystallographica Section D Structural Biology0 citationsOpen Access

It started off as a Cys, how did it end up like this? Identifying the extent of unmodelled oxidatively modified cysteines within the Protein Data Bank

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SFSamuel P. FosterAWAnna J. WarrenCSC. Alistair Siebert

Key Points

  • The research aims to determine the extent of oxidatively modified cysteines and their impact on structure solving.
  • Developed a method to identify oxidatively damaged cysteines by analyzing electron density and geometry.
  • Focus on the accuracy of built models in the Protein Data Bank.
  • Investigated the predisposition of cysteines in active sites or hydrolases to radiation damage.
  • Identified significant instances of oxidative modification among cysteines.
  • Established that cysteines in active sites are particularly vulnerable to radiation damage.
  • Highlighted inaccuracies in current structural interpretations due to unmodelled cysteine modifications.

Abstract

Radiation damage to macromolecular structures remains a significant challenge for accurate structure solution by X-ray crystallography, leading to incorrect structural and chemical interpretation of the data. Site-specific radiation damage is insidious, typically unidentifiable solely from summary statistics, and is primarily discussed with reference to the predominant forms: disulfide-bond cleavage, metal-centre reduction and decarboxylation of acidic residues. A method is presented for identifying potentially oxidatively damaged cysteines by interrogating the accuracy of the built model within the electron density and the geometry of the difference density peaks surrounding a cysteine. We also highlight that cysteines located within protein active sites or that are in hydrolases are predisposed to this damage.

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Cite This Study

Foster et al. (2026) studied this question.

synapsesocial.com/papers/6a1fc58bdee9eb8c0dce6fd1https://doi.org/10.1107/s2059798326003943
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