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Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers

We explore the use of symmetry-adapted perturbation theory (SAPT) as a simple and efficient means to compute interaction energies between large molecular systems with a hybrid method combining NISQ-era quantum and classical computers. From the one- and two-particle reduced density matrices of the mo...

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Autores principales: Malone, Fionn D., Parrish, Robert M., Welden, Alicia R., Fox, Thomas, Degroote, Matthias, Kyoseva, Elica, Moll, Nikolaj, Santagati, Raffaele, Streif, Michael
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8926290/
https://www.ncbi.nlm.nih.gov/pubmed/35414867
http://dx.doi.org/10.1039/d1sc05691c
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author Malone, Fionn D.
Parrish, Robert M.
Welden, Alicia R.
Fox, Thomas
Degroote, Matthias
Kyoseva, Elica
Moll, Nikolaj
Santagati, Raffaele
Streif, Michael
author_facet Malone, Fionn D.
Parrish, Robert M.
Welden, Alicia R.
Fox, Thomas
Degroote, Matthias
Kyoseva, Elica
Moll, Nikolaj
Santagati, Raffaele
Streif, Michael
author_sort Malone, Fionn D.
collection PubMed
description We explore the use of symmetry-adapted perturbation theory (SAPT) as a simple and efficient means to compute interaction energies between large molecular systems with a hybrid method combining NISQ-era quantum and classical computers. From the one- and two-particle reduced density matrices of the monomer wavefunctions obtained by the variational quantum eigensolver (VQE), we compute SAPT contributions to the interaction energy [SAPT(VQE)]. At first order, this energy yields the electrostatic and exchange contributions for non-covalently bound systems. We empirically find from ideal statevector simulations that the SAPT(VQE) interaction energy components display orders of magnitude lower absolute errors than the corresponding VQE total energies. Therefore, even with coarsely optimized low-depth VQE wavefunctions, we still obtain sub kcal mol(−1) accuracy in the SAPT interaction energies. In SAPT(VQE), the quantum requirements, such as qubit count and circuit depth, are lowered by performing computations on the separate molecular systems. Furthermore, active spaces allow for large systems containing thousands of orbitals to be reduced to a small enough orbital set to perform the quantum portions of the computations. We benchmark SAPT(VQE) (with the VQE component simulated by ideal statevector simulators) against a handful of small multi-reference dimer systems and the iron center containing human cancer-relevant protein lysine-specific demethylase 5 (KDM5A).
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spelling pubmed-89262902022-04-11 Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers Malone, Fionn D. Parrish, Robert M. Welden, Alicia R. Fox, Thomas Degroote, Matthias Kyoseva, Elica Moll, Nikolaj Santagati, Raffaele Streif, Michael Chem Sci Chemistry We explore the use of symmetry-adapted perturbation theory (SAPT) as a simple and efficient means to compute interaction energies between large molecular systems with a hybrid method combining NISQ-era quantum and classical computers. From the one- and two-particle reduced density matrices of the monomer wavefunctions obtained by the variational quantum eigensolver (VQE), we compute SAPT contributions to the interaction energy [SAPT(VQE)]. At first order, this energy yields the electrostatic and exchange contributions for non-covalently bound systems. We empirically find from ideal statevector simulations that the SAPT(VQE) interaction energy components display orders of magnitude lower absolute errors than the corresponding VQE total energies. Therefore, even with coarsely optimized low-depth VQE wavefunctions, we still obtain sub kcal mol(−1) accuracy in the SAPT interaction energies. In SAPT(VQE), the quantum requirements, such as qubit count and circuit depth, are lowered by performing computations on the separate molecular systems. Furthermore, active spaces allow for large systems containing thousands of orbitals to be reduced to a small enough orbital set to perform the quantum portions of the computations. We benchmark SAPT(VQE) (with the VQE component simulated by ideal statevector simulators) against a handful of small multi-reference dimer systems and the iron center containing human cancer-relevant protein lysine-specific demethylase 5 (KDM5A). The Royal Society of Chemistry 2022-01-17 /pmc/articles/PMC8926290/ /pubmed/35414867 http://dx.doi.org/10.1039/d1sc05691c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Malone, Fionn D.
Parrish, Robert M.
Welden, Alicia R.
Fox, Thomas
Degroote, Matthias
Kyoseva, Elica
Moll, Nikolaj
Santagati, Raffaele
Streif, Michael
Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title_full Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title_fullStr Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title_full_unstemmed Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title_short Towards the simulation of large scale protein–ligand interactions on NISQ-era quantum computers
title_sort towards the simulation of large scale protein–ligand interactions on nisq-era quantum computers
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8926290/
https://www.ncbi.nlm.nih.gov/pubmed/35414867
http://dx.doi.org/10.1039/d1sc05691c
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