Large-scale application of free energy perturbation calculations for antibody design

Abstract

Alchemical free energy perturbation (FEP) is a rigorous and powerful technique to calculate the free energy difference between distinct chemical systems. Here we report our implementation of automated large-scale FEP calculations, using the Amber software package, to facilitate antibody design and evaluation. In combination with Hamiltonian replica exchange, our FEP simulations aim to predict the effect of mutations on both the binding affinity and the structural stability. Importantly, we incorporate multiple strategies to faithfully estimate the statistical uncertainties in the FEP results. As a case study, we apply our protocols to systematically evaluate variants of the m396 antibody for their conformational stability and their binding affinity to the spike proteins of SARS-CoV-1 and SARS-CoV-2. By properly adjusting relevant parameters, the particle collapse problems in the FEP simulations are avoided. Furthermore, large statistical errors in a small fraction of the FEP calculations are effectively reduced by extending the sampling, such that acceptable statistical uncertainties are achieved for the vast majority of the cases with a modest total computational cost. Finally, our predicted conformational stability for the m396 variants is qualitatively consistent with the experimentally measured melting temperatures. Our work thus demonstrates the applicability of FEP in computational antibody design.

Document Details

Document Type
Pub Defense Publication
Publication Date
Jul 21, 2022
Source ID
10.1038/s41598-022-14443-z

Entities

People

  • Adam ZemÅ‚a
  • Brent W. Segelke
  • Daniel M. Faissol
  • Edmond Y. Lau
  • Fangqiang Zhu
  • Feliza A. Bourguet
  • Kathryn T. Arrildt
  • Thomas A. Desautels
  • William F. D. Bennett

Organizations

  • Defense Advanced Research Projects Agency
  • Lawrence Livermore National Laboratory

Tags

Fields of Study

  • Physics

Readers

  • Astronomy/Astrophysics
  • Computational Fluid Dynamics (CFD)
  • Quantum Chemistry