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Unique mechanisms to increase structural stability and enhance antigen binding in nanobodies

  • Natalia E. Ketaren
  • , Peter C. Fridy
  • , Vladimir Malashkevich
  • , Tanmoy Sanyal
  • , Marc Brillantes
  • , Mary K. Thompson
  • , Deena A. Oren
  • , Jeffrey B. Bonanno
  • , Andrej Šali
  • , Steven C. Almo
  • , Brian T. Chait
  • , Michael P. Rout

Research output: Contribution to journalArticlepeer-review

Abstract

Nanobodies are single domain antibody variants proving themselves to be compelling tools for research, disease diagnostics, and as therapeutics targeting a myriad of disease agents. However, despite this potential, their mechanisms of paratope presentation and structural stabilization have not been fully explored. Here, we show that unlike monoclonal antibodies, a nanobody repertoire maximizes sampling of an antigen surface by binding a single antigen in at least three different orientations, which are correlated with their paratope composition. Structure-guided reengineering of several nanobodies reveals that a single point mutation within the paratope or a highly conserved region of a nanobody's framework 3 (FR3) can markedly improve antigen affinity, nanobody stability, or both. Conversely, we show the negative impact on antigen affinity when “over-stabilizing” nanobodies. Collectively our results provide a universal strategy to tune a nanobody's affinity by modifying specific residues that can readily be applied to guide nanobody optimization and functionalization.

Original languageEnglish (US)
Pages (from-to)677-690.e5
JournalStructure
Volume33
Issue number4
DOIs
StatePublished - Apr 3 2025

Keywords

  • SARS-CoV-2 nanobodies
  • VH
  • antibody
  • green fluorescent protein
  • nanobody
  • nanobody engineering
  • nanobody optimization

ASJC Scopus subject areas

  • Structural Biology
  • Molecular Biology

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