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Local structural flexibility drives oligomorphism in computationally designed protein assemblies

  • Alena Khmelinskaia
  • , Neville P. Bethel
  • , Farzad Fatehi
  • , Bhoomika Basu Mallik
  • , Aleksandar Antanasijevic
  • , Andrew J. Borst
  • , Szu Hsueh Lai
  • , Ho Yeung Chim
  • , Jing Yang ‘John’ Wang
  • , Marcos C. Miranda
  • , Andrew M. Watkins
  • , Cassandra Ogohara
  • , Shane Caldwell
  • , Mengyu Wu
  • , Albert J.R. Heck
  • , David Veesler
  • , Andrew B. Ward
  • , David Baker
  • , Reidun Twarock
  • , Neil P. King

研究成果: Article同行評審

10   連結會在新分頁中打開 引文 斯高帕斯(Scopus)

摘要

Many naturally occurring protein assemblies have dynamic structures that allow them to perform specialized functions. Although computational methods for designing novel self-assembling proteins have advanced substantially over the past decade, they primarily focus on designing static structures. Here we characterize three distinct computationally designed protein assemblies that exhibit unanticipated structural diversity arising from flexibility in their subunits. Cryo-EM single-particle reconstructions and native mass spectrometry reveal two distinct architectures for two assemblies, while six cryo-EM reconstructions for the third likely represent a subset of its solution-phase structures. Structural modeling and molecular dynamics simulations indicate that constrained flexibility within the subunits of each assembly promotes a defined range of architectures rather than nonspecific aggregation. Redesigning the flexible region in one building block rescues the intended monomorphic assembly. These findings highlight structural flexibility as a powerful design principle, enabling exploration of new structural and functional spaces in protein assembly design.

原文English
頁(從 - 到)1050-1060
頁數11
期刊Nature Structural and Molecular Biology
32
發行號6
DOIs
出版狀態Published - 2025 6月

All Science Journal Classification (ASJC) codes

  • 結構生物學
  • 分子生物學

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