Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.

<h4>Background</h4>The complexity of biological systems motivates us to use the underlying networks to provide deep understanding of disease etiology and the human diseases are viewed as perturbations of dynamic properties of networks. Control theory that deals with dynamic systems has b...

Full description

Bibliographic Details
Main Authors: Bingbo Wang, Lin Gao, Qingfang Zhang, Aimin Li, Yue Deng, Xingli Guo
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2015-01-01
Series:PLoS ONE
Online Access:https://doi.org/10.1371/journal.pone.0135491
id doaj-b1b394440f4144be872ccb1a70cf6694
record_format Article
spelling doaj-b1b394440f4144be872ccb1a70cf66942021-03-04T07:37:55ZengPublic Library of Science (PLoS)PLoS ONE1932-62032015-01-01108e013549110.1371/journal.pone.0135491Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.Bingbo WangLin GaoQingfang ZhangAimin LiYue DengXingli Guo<h4>Background</h4>The complexity of biological systems motivates us to use the underlying networks to provide deep understanding of disease etiology and the human diseases are viewed as perturbations of dynamic properties of networks. Control theory that deals with dynamic systems has been successfully used to capture systems-level knowledge in large amount of quantitative biological interactions. But from the perspective of system control, the ways by which multiple genetic factors jointly perturb a disease phenotype still remain.<h4>Results</h4>In this work, we combine tools from control theory and network science to address the diversified control paths in complex networks. Then the ways by which the disease genes perturb biological systems are identified and quantified by the control paths in a human regulatory network. Furthermore, as an application, prioritization of candidate genes is presented by use of control path analysis and gene ontology annotation for definition of similarities. We use leave-one-out cross-validation to evaluate the ability of finding the gene-disease relationship. Results have shown compatible performance with previous sophisticated works, especially in directed systems.<h4>Conclusions</h4>Our results inspire a deeper understanding of molecular mechanisms that drive pathological processes. Diversified control paths offer a basis for integrated intervention techniques which will ultimately lead to the development of novel therapeutic strategies.https://doi.org/10.1371/journal.pone.0135491
collection DOAJ
language English
format Article
sources DOAJ
author Bingbo Wang
Lin Gao
Qingfang Zhang
Aimin Li
Yue Deng
Xingli Guo
spellingShingle Bingbo Wang
Lin Gao
Qingfang Zhang
Aimin Li
Yue Deng
Xingli Guo
Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
PLoS ONE
author_facet Bingbo Wang
Lin Gao
Qingfang Zhang
Aimin Li
Yue Deng
Xingli Guo
author_sort Bingbo Wang
title Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
title_short Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
title_full Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
title_fullStr Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
title_full_unstemmed Diversified Control Paths: A Significant Way Disease Genes Perturb the Human Regulatory Network.
title_sort diversified control paths: a significant way disease genes perturb the human regulatory network.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2015-01-01
description <h4>Background</h4>The complexity of biological systems motivates us to use the underlying networks to provide deep understanding of disease etiology and the human diseases are viewed as perturbations of dynamic properties of networks. Control theory that deals with dynamic systems has been successfully used to capture systems-level knowledge in large amount of quantitative biological interactions. But from the perspective of system control, the ways by which multiple genetic factors jointly perturb a disease phenotype still remain.<h4>Results</h4>In this work, we combine tools from control theory and network science to address the diversified control paths in complex networks. Then the ways by which the disease genes perturb biological systems are identified and quantified by the control paths in a human regulatory network. Furthermore, as an application, prioritization of candidate genes is presented by use of control path analysis and gene ontology annotation for definition of similarities. We use leave-one-out cross-validation to evaluate the ability of finding the gene-disease relationship. Results have shown compatible performance with previous sophisticated works, especially in directed systems.<h4>Conclusions</h4>Our results inspire a deeper understanding of molecular mechanisms that drive pathological processes. Diversified control paths offer a basis for integrated intervention techniques which will ultimately lead to the development of novel therapeutic strategies.
url https://doi.org/10.1371/journal.pone.0135491
work_keys_str_mv AT bingbowang diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
AT lingao diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
AT qingfangzhang diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
AT aiminli diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
AT yuedeng diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
AT xingliguo diversifiedcontrolpathsasignificantwaydiseasegenesperturbthehumanregulatorynetwork
_version_ 1714808311433396224