Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.

BACKGROUND: Extensive and intensive studies on the unfolding of proteins require appropriate theoretical model and parameter to clearly illustrate the feature and characteristic of the unfolding system. Over the past several decades, four approaches have been proposed to describe the interaction bet...

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Main Authors: Liujiao Bian, Xu Ji
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3948385?pdf=render
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author Liujiao Bian
Xu Ji
author_facet Liujiao Bian
Xu Ji
author_sort Liujiao Bian
collection DOAJ
description BACKGROUND: Extensive and intensive studies on the unfolding of proteins require appropriate theoretical model and parameter to clearly illustrate the feature and characteristic of the unfolding system. Over the past several decades, four approaches have been proposed to describe the interaction between proteins and denaturants, but some ambiguity and deviations usually occur in the explanation of the experimental data. METHODOLOGY/PRINCIPAL FINDINGS: In this work, a theoretical model was presented to show the dependency of the residual activity ratio of the proteins on the molar denaturant concentration. Through the characteristic unfolding parameters ki and Δmi in this model, the distribution, transition and thermodynamic stability of protein conformations during the unfolding process can be quantitatively described. This model was tested with the two-state unfolding of bovine heart cytochrome c and the three-state unfolding of hen egg white lysozyme induced by both guanidine hydrochloride and urea, the four-state unfolding of bovine carbonic anhydrase b induced by guanidine hydrochloride and the unfolding of some other proteins induced by denaturants. The results illustrated that this model could be used accurately to reveal the distribution and transition of protein conformations in the presence of different concentrations of denaturants and to evaluate the unfolding tendency and thermodynamic stability of different conformations. In most denaturant-induced unfolding of proteins, the unfolding became increasingly hard in next transition step and the proteins became more unstable as they attained next successive stable conformation. CONCLUSIONS/SIGNIFICANCE: This work presents a useful method for people to study the unfolding of proteins and may be used to describe the unfolding and refolding of other biopolymers induced by denaturants, inducers, etc.
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spelling doaj.art-e0c25485244f40c0be967a993c322f812022-12-22T03:34:03ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0193e9112910.1371/journal.pone.0091129Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.Liujiao BianXu JiBACKGROUND: Extensive and intensive studies on the unfolding of proteins require appropriate theoretical model and parameter to clearly illustrate the feature and characteristic of the unfolding system. Over the past several decades, four approaches have been proposed to describe the interaction between proteins and denaturants, but some ambiguity and deviations usually occur in the explanation of the experimental data. METHODOLOGY/PRINCIPAL FINDINGS: In this work, a theoretical model was presented to show the dependency of the residual activity ratio of the proteins on the molar denaturant concentration. Through the characteristic unfolding parameters ki and Δmi in this model, the distribution, transition and thermodynamic stability of protein conformations during the unfolding process can be quantitatively described. This model was tested with the two-state unfolding of bovine heart cytochrome c and the three-state unfolding of hen egg white lysozyme induced by both guanidine hydrochloride and urea, the four-state unfolding of bovine carbonic anhydrase b induced by guanidine hydrochloride and the unfolding of some other proteins induced by denaturants. The results illustrated that this model could be used accurately to reveal the distribution and transition of protein conformations in the presence of different concentrations of denaturants and to evaluate the unfolding tendency and thermodynamic stability of different conformations. In most denaturant-induced unfolding of proteins, the unfolding became increasingly hard in next transition step and the proteins became more unstable as they attained next successive stable conformation. CONCLUSIONS/SIGNIFICANCE: This work presents a useful method for people to study the unfolding of proteins and may be used to describe the unfolding and refolding of other biopolymers induced by denaturants, inducers, etc.http://europepmc.org/articles/PMC3948385?pdf=render
spellingShingle Liujiao Bian
Xu Ji
Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
PLoS ONE
title Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
title_full Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
title_fullStr Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
title_full_unstemmed Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
title_short Distribution, transition and thermodynamic stability of protein conformations in the denaturant-induced unfolding of proteins.
title_sort distribution transition and thermodynamic stability of protein conformations in the denaturant induced unfolding of proteins
url http://europepmc.org/articles/PMC3948385?pdf=render
work_keys_str_mv AT liujiaobian distributiontransitionandthermodynamicstabilityofproteinconformationsinthedenaturantinducedunfoldingofproteins
AT xuji distributiontransitionandthermodynamicstabilityofproteinconformationsinthedenaturantinducedunfoldingofproteins