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February 5, 2026Bulletin of the Chemical Society of Japan0 citations

Effects of side-loop flexibility on the redox potential and stability of the blue copper protein, pseudoazurin

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ASA. SugaiIbaraki UniversityTYTakahide YamaguchiIbaraki UniversityTKTakamitsu Kohzuma

Key Points

  • This research aims to explore how side-loop modifications in pseudoazurin influence its redox potential and stability.
  • Examined Met16Gly and Met16Ala variants of pseudoazurin
  • Used spectroscopic techniques to compare variants to wild type
  • Determined stability through electrospray-mass spectrometry
  • Analyzed X-ray crystal structures to assess conformational changes
  • Met16Gly showed a redox potential increase of approximately 50 mV over wild type
  • Met16Gly had a 40 mV higher redox potential than Met16Ala
  • Stability ranked as wild type > Met16Ala > Met16Gly
  • Met16Gly displayed both 'close' and 'open' conformations of the side-loop, unlike other variants

Abstract

Abstract Blue copper proteins are a well-studied group of metalloproteins characterized by a type 1 copper site. The properties of the active site are influenced by the primary coordination sphere and the second coordination sphere. In this study, we investigated the effects of Met16Gly and Met16Ala variants of pseudoazurin, which were designed to remove S-π noncovalent interaction with a Cu-coordinating His81. Both variants were spectroscopically similar to the wild type (WT), indicating minimal changes in the electronic structure of the active site. However, the redox potential of Met16Gly was ca. 50 mV and 40 mV higher than WT and Met16Ala, respectively. The stability of the variants followed the order WT Met16Ala Met16Gly, as determined by electrospray-mass spectrometry. X-ray crystal structure analyses revealed that the Met16Gly adopts both "close" and "open" conformations of the “side-loop”, while Met16Ala and WT only shows a close conformation. The open conformation in Met16Gly exposes the Cu-coordinating His81 to the solvent, likely facilitating copper ion dissociation and protein unfolding. The positive shift of redox potential can be rationalized in terms of the entatic state or rack-induced bonding model, in which increased side-loop flexibility relaxes the protein-imposed constraints on the Cu-coordination.

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Cite This Study

Sugai et al. (2026) studied this question.

synapsesocial.com/papers/6984359ef1d9ada3c1fb49abhttps://doi.org/10.1093/bulcsj/uoag023
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