Coupling Quantum Mechanical Modeling and Molecular Dynamics on Heterogeneous Supercomputers for Studying Distal Mutation Effects on Drug Binding in HIV-1

Abstract Predicting how protein mutations affect drug binding remains a major challenge, particularly when the mutations are distal from the binding site. In this study, we introduce a coupled simulation workflow that combines classical molecular dynamics (MD) with high-throughput quantum mechanical (QM) analysis to reveal the electronic structure signatures of mutation-induced drug resistance in the HIV-1 protease. Our workflow leverages GPU-accelerated MD to generate conformational ensembles, and performs in operando linear-scaling density functional theory (DFT) calculations on selected frames parallelized on a coupled partition of CPU nodes. This design enables efficient, massively parallel quantum analysis of protein–ligand complexes at atomic resolution. Using this approach, we investigate resistance to the antiviral Darunavir in a multimutant HIV-1 protease variant. By mapping the network of electronic interactions across the binding interface, our results highlight the critical role of conformational sampling and quantum insight in understanding distal mutation effects, and demonstrate a scalable computational strategy for studying complex biophysical mechanisms of drug resistance. We argue that this type of analysis may pave the way for designing inhibitors that maintain binding stability against systemic, mutation-induced destabilization.

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Publication Details

Journal
Journal of Chemical Theory and Computation
Published
2026-09-18
DOI
https://doi.org/10.1021/acs.jctc.6c01377
Primary Topic
HIV/AIDS drug development and treatment
Type
article
Field-Weighted Citation Impact
0.00

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article

Coupling Quantum Mechanical Modeling and Molecular Dynamics on Heterogeneous Supercomputers for Studying Distal Mutation Effects on Drug Binding in HIV-1

Marco Zaccaria, Luigi Genovese, Louis Beal, William Dawson
Journal of Chemical Theory and Computation
HIV/AIDS drug development and treatment
article

Coupling Quantum Mechanical Modeling and Molecular Dynamics on Heterogeneous Supercomputers for Studying Distal Mutation Effects on Drug Binding in HIV-1

Marco Zaccaria, Luigi Genovese, Louis Beal, William Dawson
article en

Abstract

Abstract Predicting how protein mutations affect drug binding remains a major challenge, particularly when the mutations are distal from the binding site. In this study, we introduce a coupled simulation workflow that combines classical molecular dynamics (MD) with high-throughput quantum mechanical (QM) analysis to reveal the electronic structure signatures of mutation-induced drug resistance in the HIV-1 protease. Our workflow leverages GPU-accelerated MD to generate conformational ensembles, and performs in operando linear-scaling density functional theory (DFT) calculations on selected frames parallelized on a coupled partition of CPU nodes. This design enables efficient, massively parallel quantum analysis of protein–ligand complexes at atomic resolution. Using this approach, we investigate resistance to the antiviral Darunavir in a multimutant HIV-1 protease variant. By mapping the network of electronic interactions across the binding interface, our results highlight the critical role of conformational sampling and quantum insight in understanding distal mutation effects, and demonstrate a scalable computational strategy for studying complex biophysical mechanisms of drug resistance. We argue that this type of analysis may pave the way for designing inhibitors that maintain binding stability against systemic, mutation-induced destabilization.

Journal of Chemical Theory and Computation
Institut national de recherche en sciences et technologies du numérique (FR), Centre Inria de l'Université Grenoble Alpes (FR), RIKEN Center for Computational Science (JP), Université de Rennes (FR), Université Grenoble Alpes (FR)
European High Performance Computing Joint Undertaking, European Commission, HORIZON EUROPE Framework Programme, RIKEN, HORIZON EUROPE European Innovation Council
Good health and well-being
Openalex Percentile: Top 74%
HIV/AIDS drug development and treatment
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