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Main Authors: Freitas, Frederico Campos, Byju, Sandra, Hassan, Asem, de Oliveira, Ronaldo Junio, Whitford, Paul C.
Format: Preprint
Published: 2021
Subjects:
Online Access:https://arxiv.org/abs/2110.13663
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author Freitas, Frederico Campos
Byju, Sandra
Hassan, Asem
de Oliveira, Ronaldo Junio
Whitford, Paul C.
author_facet Freitas, Frederico Campos
Byju, Sandra
Hassan, Asem
de Oliveira, Ronaldo Junio
Whitford, Paul C.
contents The dynamics of biological polymers, including proteins, RNA, and DNA, occur in very high-dimensional spaces. Many naturally-occurring polymers can navigate a vast phase space and rapidly find their lowest free energy (folded) state. Thus, although the search process is stochastic, it is not completely random. Instead, it is best described in terms of diffusion along a downhill free energy landscape. In this context, there have been many efforts to use simplified representations of the energetics, for which the potential energy is chosen to be a relatively smooth function with a global minima that corresponds to the folded state. That is, instead of including every type of physical interaction, the broad characteristics of the landscape are encoded in approximate energy functions. We describe a particular class of models, called structure-based models, that can be used to explore the diffusive properties of biomolecular folding and conformational rearrangements. These energy functions may be regarded as the "spherical cow" for modeling molecular biophysics. We discuss the physical principles underlying these models and provide an entry-level tutorial, which may be adapted for use in curricula for physics and non-physics majors.
format Preprint
id arxiv_https___arxiv_org_abs_2110_13663
institution arXiv
publishDate 2021
record_format arxiv
spellingShingle Quantifying biomolecular diffusion with a "spherical cow" model
Freitas, Frederico Campos
Byju, Sandra
Hassan, Asem
de Oliveira, Ronaldo Junio
Whitford, Paul C.
Computational Physics
Soft Condensed Matter
Biological Physics
60G07 (primary), 35Q84, 60J70
G.3; I.6; J.2
The dynamics of biological polymers, including proteins, RNA, and DNA, occur in very high-dimensional spaces. Many naturally-occurring polymers can navigate a vast phase space and rapidly find their lowest free energy (folded) state. Thus, although the search process is stochastic, it is not completely random. Instead, it is best described in terms of diffusion along a downhill free energy landscape. In this context, there have been many efforts to use simplified representations of the energetics, for which the potential energy is chosen to be a relatively smooth function with a global minima that corresponds to the folded state. That is, instead of including every type of physical interaction, the broad characteristics of the landscape are encoded in approximate energy functions. We describe a particular class of models, called structure-based models, that can be used to explore the diffusive properties of biomolecular folding and conformational rearrangements. These energy functions may be regarded as the "spherical cow" for modeling molecular biophysics. We discuss the physical principles underlying these models and provide an entry-level tutorial, which may be adapted for use in curricula for physics and non-physics majors.
title Quantifying biomolecular diffusion with a "spherical cow" model
topic Computational Physics
Soft Condensed Matter
Biological Physics
60G07 (primary), 35Q84, 60J70
G.3; I.6; J.2
url https://arxiv.org/abs/2110.13663