Glycan-Induced Protein Dynamics in Human Norovirus P Dimers Depend on Virus Strain and Deamidation Status

Jasmin Dülfer1, Hao Yan1, Maxim N Brodmerkel2

  • 1Heinrich Pette Institute, Leibniz Institute for Experimental Virology, 20251 Hamburg, Germany.

Insights

Norovirus P domain dynamics change with glycan binding, varying by strain and deamidation. This impacts how noroviruses attach to cells, affecting viral gastroenteritis spread.

Area of Science:

  • Virology
  • Structural Biology
  • Immunology

Background:

  • Noroviruses, particularly GII.4 strains, are a leading cause of viral gastroenteritis globally.
  • The norovirus capsid protein VP1's P domain binds histo blood-group antigens (HBGAs), mediating cell attachment.
  • The precise relationship between glycan interactions and norovirus cell entry remains incompletely understood.

Purpose of the Study:

  • To investigate glycan-induced protein dynamics in norovirus P dimers from different strains using HDX-MS.
  • To explore how partial deamidation of the GII.4 P domain affects glycan binding and structural dynamics.
  • To elucidate the role of strain-specific glycan interactions and deamidation in norovirus attachment.

Main Methods:

  • Employed hydrogen/deuterium exchange mass spectrometry (HDX-MS) to analyze protein dynamics.
  • Studied P dimers from various norovirus strains, including GII.4, GII.17, and GII.10.
  • Examined glycan binding to both wild-type and partially deamidated GII.4 P dimers.

Main Results:

  • Glycan binding induced distinct, strain-dependent dynamics in P dimers of GII.4, GII.17, and GII.10 noroviruses.
  • Partially deamidated GII.4 P dimers showed increased solvent exposure, flexibility, and a monomeric subpopulation upon glycan binding.
  • These dynamics differed between highly prevalent strains (GII.4 Saga, GII.4 MI001) and rarer ones (GII.17 Kawasaki 308, GII.10 Vietnam 026).

Conclusions:

  • Glycan binding triggers strain-specific structural dynamics in norovirus P domains.
  • N373 deamidation further modifies these dynamics, suggesting a complex role in modulating cell attachment.
  • Understanding these molecular mechanisms is crucial for controlling norovirus gastroenteritis.

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