Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.

Allostery is one of the pervasive mechanisms through which proteins in living systems carry out enzymatic activity, cell signaling, and metabolism control. Effective modeling of the protein function regulation requires a synthesis of the thermodynamic and structural views of allostery. We present he...

Full description

Bibliographic Details
Main Authors: Enrico Guarnera, Igor N Berezovsky
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-03-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC4777440?pdf=render
id doaj-a9ef5be6ff804e7bb123e7dbf4de5792
record_format Article
spelling doaj-a9ef5be6ff804e7bb123e7dbf4de57922020-11-25T02:12:16ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582016-03-01123e100467810.1371/journal.pcbi.1004678Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.Enrico GuarneraIgor N BerezovskyAllostery is one of the pervasive mechanisms through which proteins in living systems carry out enzymatic activity, cell signaling, and metabolism control. Effective modeling of the protein function regulation requires a synthesis of the thermodynamic and structural views of allostery. We present here a structure-based statistical mechanical model of allostery, allowing one to observe causality of communication between regulatory and functional sites, and to estimate per residue free energy changes. Based on the consideration of ligand free and ligand bound systems in the context of a harmonic model, corresponding sets of characteristic normal modes are obtained and used as inputs for an allosteric potential. This potential quantifies the mean work exerted on a residue due to the local motion of its neighbors. Subsequently, in a statistical mechanical framework the entropic contribution to allosteric free energy of a residue is directly calculated from the comparison of conformational ensembles in the ligand free and ligand bound systems. As a result, this method provides a systematic approach for analyzing the energetics of allosteric communication based on a single structure. The feasibility of the approach was tested on a variety of allosteric proteins, heterogeneous in terms of size, topology and degree of oligomerization. The allosteric free energy calculations show the diversity of ways and complexity of scenarios existing in the phenomenology of allosteric causality and communication. The presented model is a step forward in developing the computational techniques aimed at detecting allosteric sites and obtaining the discriminative power between agonistic and antagonistic effectors, which are among the major goals in allosteric drug design.http://europepmc.org/articles/PMC4777440?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Enrico Guarnera
Igor N Berezovsky
spellingShingle Enrico Guarnera
Igor N Berezovsky
Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
PLoS Computational Biology
author_facet Enrico Guarnera
Igor N Berezovsky
author_sort Enrico Guarnera
title Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
title_short Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
title_full Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
title_fullStr Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
title_full_unstemmed Structure-Based Statistical Mechanical Model Accounts for the Causality and Energetics of Allosteric Communication.
title_sort structure-based statistical mechanical model accounts for the causality and energetics of allosteric communication.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2016-03-01
description Allostery is one of the pervasive mechanisms through which proteins in living systems carry out enzymatic activity, cell signaling, and metabolism control. Effective modeling of the protein function regulation requires a synthesis of the thermodynamic and structural views of allostery. We present here a structure-based statistical mechanical model of allostery, allowing one to observe causality of communication between regulatory and functional sites, and to estimate per residue free energy changes. Based on the consideration of ligand free and ligand bound systems in the context of a harmonic model, corresponding sets of characteristic normal modes are obtained and used as inputs for an allosteric potential. This potential quantifies the mean work exerted on a residue due to the local motion of its neighbors. Subsequently, in a statistical mechanical framework the entropic contribution to allosteric free energy of a residue is directly calculated from the comparison of conformational ensembles in the ligand free and ligand bound systems. As a result, this method provides a systematic approach for analyzing the energetics of allosteric communication based on a single structure. The feasibility of the approach was tested on a variety of allosteric proteins, heterogeneous in terms of size, topology and degree of oligomerization. The allosteric free energy calculations show the diversity of ways and complexity of scenarios existing in the phenomenology of allosteric causality and communication. The presented model is a step forward in developing the computational techniques aimed at detecting allosteric sites and obtaining the discriminative power between agonistic and antagonistic effectors, which are among the major goals in allosteric drug design.
url http://europepmc.org/articles/PMC4777440?pdf=render
work_keys_str_mv AT enricoguarnera structurebasedstatisticalmechanicalmodelaccountsforthecausalityandenergeticsofallostericcommunication
AT igornberezovsky structurebasedstatisticalmechanicalmodelaccountsforthecausalityandenergeticsofallostericcommunication
_version_ 1724910400689930240