An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints.
In this work, we introduce an algorithm to compute the derivatives of physical observables along the constrained subspace when flexible constraints are imposed on the system (i.e., constraints in which the constrained coordinates are fixed to configuration-dependent values). The presented scheme is...
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2011-01-01
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doaj-b7808e73b7a0479ebf909bb5f9d7e6cd2020-11-25T01:49:53ZengPublic Library of Science (PLoS)PLoS ONE1932-62032011-01-0169e2456310.1371/journal.pone.0024563An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints.Pablo EcheniqueClaudio N CavasottoMonica De MarcoPablo Garca-RisueñoJ L AlonsoIn this work, we introduce an algorithm to compute the derivatives of physical observables along the constrained subspace when flexible constraints are imposed on the system (i.e., constraints in which the constrained coordinates are fixed to configuration-dependent values). The presented scheme is exact, it does not contain any tunable parameter, and it only requires the calculation and inversion of a sub-block of the Hessian matrix of second derivatives of the function through which the constraints are defined. We also present a practical application to the case in which the sought observables are the Euclidean coordinates of complex molecular systems, and the function whose minimization defines the flexible constraints is the potential energy. Finally, and in order to validate the method, which, as far as we are aware, is the first of its kind in the literature, we compare it to the natural and straightforward finite-differences approach in a toy system and in three molecules of biological relevance: methanol, N-methyl-acetamide and a tri-glycine peptide.http://europepmc.org/articles/PMC3171457?pdf=render |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Pablo Echenique Claudio N Cavasotto Monica De Marco Pablo Garca-Risueño J L Alonso |
spellingShingle |
Pablo Echenique Claudio N Cavasotto Monica De Marco Pablo Garca-Risueño J L Alonso An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. PLoS ONE |
author_facet |
Pablo Echenique Claudio N Cavasotto Monica De Marco Pablo Garca-Risueño J L Alonso |
author_sort |
Pablo Echenique |
title |
An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
title_short |
An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
title_full |
An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
title_fullStr |
An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
title_full_unstemmed |
An exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
title_sort |
exact expression to calculate the derivatives of position-dependent observables in molecular simulations with flexible constraints. |
publisher |
Public Library of Science (PLoS) |
series |
PLoS ONE |
issn |
1932-6203 |
publishDate |
2011-01-01 |
description |
In this work, we introduce an algorithm to compute the derivatives of physical observables along the constrained subspace when flexible constraints are imposed on the system (i.e., constraints in which the constrained coordinates are fixed to configuration-dependent values). The presented scheme is exact, it does not contain any tunable parameter, and it only requires the calculation and inversion of a sub-block of the Hessian matrix of second derivatives of the function through which the constraints are defined. We also present a practical application to the case in which the sought observables are the Euclidean coordinates of complex molecular systems, and the function whose minimization defines the flexible constraints is the potential energy. Finally, and in order to validate the method, which, as far as we are aware, is the first of its kind in the literature, we compare it to the natural and straightforward finite-differences approach in a toy system and in three molecules of biological relevance: methanol, N-methyl-acetamide and a tri-glycine peptide. |
url |
http://europepmc.org/articles/PMC3171457?pdf=render |
work_keys_str_mv |
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