Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.

The transcription factor p53 regulates cellular integrity in response to stress. p53 is mutated in more than half of cancerous cells, with a majority of the mutations localized to the DNA binding domain (DBD). In order to map the structural and dynamical features of the DBD, we carried out multiple...

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Main Authors: Suryani Lukman, David P Lane, Chandra S Verma
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3855832?pdf=render
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spelling doaj-337402e244814aa5ab71c3ab5ad436b42020-11-25T01:23:19ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01811e8022110.1371/journal.pone.0080221Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.Suryani LukmanDavid P LaneChandra S VermaThe transcription factor p53 regulates cellular integrity in response to stress. p53 is mutated in more than half of cancerous cells, with a majority of the mutations localized to the DNA binding domain (DBD). In order to map the structural and dynamical features of the DBD, we carried out multiple copy molecular dynamics simulations (totaling 0.8 μs). Simulations show the loop 1 to be the most dynamic element among the DNA-contacting loops (loops 1-3). Loop 1 occupies two major conformational states: extended and recessed; the former but not the latter displays correlations in atomic fluctuations with those of loop 2 (~24 Å apart). Since loop 1 binds to the major groove whereas loop 2 binds to the minor groove of DNA, our results begin to provide some insight into the possible mechanism underpinning the cooperative nature of DBD binding to DNA. We propose (1) a novel mechanism underlying the dynamics of loop 1 and the possible tread-milling of p53 on DNA and (2) possible mutations on loop 1 residues to restore the transcriptional activity of an oncogenic mutation at a distant site.http://europepmc.org/articles/PMC3855832?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Suryani Lukman
David P Lane
Chandra S Verma
spellingShingle Suryani Lukman
David P Lane
Chandra S Verma
Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
PLoS ONE
author_facet Suryani Lukman
David P Lane
Chandra S Verma
author_sort Suryani Lukman
title Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
title_short Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
title_full Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
title_fullStr Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
title_full_unstemmed Mapping the structural and dynamical features of multiple p53 DNA binding domains: insights into loop 1 intrinsic dynamics.
title_sort mapping the structural and dynamical features of multiple p53 dna binding domains: insights into loop 1 intrinsic dynamics.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description The transcription factor p53 regulates cellular integrity in response to stress. p53 is mutated in more than half of cancerous cells, with a majority of the mutations localized to the DNA binding domain (DBD). In order to map the structural and dynamical features of the DBD, we carried out multiple copy molecular dynamics simulations (totaling 0.8 μs). Simulations show the loop 1 to be the most dynamic element among the DNA-contacting loops (loops 1-3). Loop 1 occupies two major conformational states: extended and recessed; the former but not the latter displays correlations in atomic fluctuations with those of loop 2 (~24 Å apart). Since loop 1 binds to the major groove whereas loop 2 binds to the minor groove of DNA, our results begin to provide some insight into the possible mechanism underpinning the cooperative nature of DBD binding to DNA. We propose (1) a novel mechanism underlying the dynamics of loop 1 and the possible tread-milling of p53 on DNA and (2) possible mutations on loop 1 residues to restore the transcriptional activity of an oncogenic mutation at a distant site.
url http://europepmc.org/articles/PMC3855832?pdf=render
work_keys_str_mv AT suryanilukman mappingthestructuralanddynamicalfeaturesofmultiplep53dnabindingdomainsinsightsintoloop1intrinsicdynamics
AT davidplane mappingthestructuralanddynamicalfeaturesofmultiplep53dnabindingdomainsinsightsintoloop1intrinsicdynamics
AT chandrasverma mappingthestructuralanddynamicalfeaturesofmultiplep53dnabindingdomainsinsightsintoloop1intrinsicdynamics
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