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Damping amyloid-associated conformational fluctuations in a protein by an engineered diselenide bridge

  • Yanwu Yang
  • , Balamurugan Dhayalan
  • , Andreas Ehnbom
  • , Orit Weil-Ktorza
  • , Norman Metanis
  • , Michael A. Weiss*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Polypeptide cross-β assembly, characteristic of diverse proteotoxic diseases, defines a general thermodynamic ground state and limits the shelf lives of peptide- and protein therapeutics. A model is provided by insulin. Although the hormone contains a predominance of α-helix, its fibrils exhibit cross-β reorganization. In the real world, aggregation-coupled fibrillation of insulin underlies its degradation above room temperature, impairing activity and imposing a complex global “cold chain” of transport and storage. Here, we describe biophysical protection of an insulin analog at an elevated temperature by an engineered diselenide bridge. Our studies focused on insulin glargine, the active ingredient of long-acting formulations in broad clinical use. Insoluble in a subcutaneous depot due to its shifted isoelectric point, the analog dissolves at pH 4.0 and so, unlike neutral formulations of the wild-type hormone, is unprotected by zinc-mediated hexamer assembly. Whereas at 37°C the fibrillation lag time of insulin glargine is accelerated by fourfold relative to WT insulin, such instability is circumvented by pairwise substitution of CysA6 and CysA11 by selenocysteine. Protection from fibrillation correlates with augmented resistance to pepsin cleavage, guanidine denaturation, and thermal unfolding. Although NMR structures of insulin glargine and its diselenide analog are similar, damping of conformational fluctuations is evidenced by patterns of 1H-NMR chemical shifts, helix-associated NOEs, amide-resonance line widths, and 1H-2H amide-proton exchange. Such damping is discussed in relation to molecular dynamics simulations. Demonstrating a likely mechanistic relationship between fibrillation and native-state conformational fluctuations, our findings highlight the translational promise of “dynamic engineering” via nonstandard mutagenesis.

Original languageEnglish
Article numbere70697
JournalProtein Science
Volume35
Issue number8
DOIs
StatePublished - Aug 2026

Bibliographical note

Publisher Copyright:
© 2026 The Author(s). Protein Science published by Wiley Periodicals LLC on behalf of The Protein Society.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well-being

Keywords

  • diabetes mellitus
  • nonstandard protein engineering
  • protein dynamics
  • protein stability
  • unnatural mutagenesis

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