Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.

Many virtual screening methods have been developed for identifying single-target inhibitors based on the strategy of "one-disease, one-target, one-drug". The hit rates of these methods are often low because they cannot capture the features that play key roles in the biological functions of...

Full description

Bibliographic Details
Main Authors: Kai-Cheng Hsu, Wen-Chi Cheng, Yen-Fu Chen, Wen-Ching Wang, Jinn-Moon Yang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS Computational Biology
Online Access:http://europepmc.org/articles/PMC3701698?pdf=render
id doaj-6dbb71a0456b47438d66748ed1ce5f3a
record_format Article
spelling doaj-6dbb71a0456b47438d66748ed1ce5f3a2020-11-25T01:53:27ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582013-01-0197e100312710.1371/journal.pcbi.1003127Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.Kai-Cheng HsuWen-Chi ChengYen-Fu ChenWen-Ching WangJinn-Moon YangMany virtual screening methods have been developed for identifying single-target inhibitors based on the strategy of "one-disease, one-target, one-drug". The hit rates of these methods are often low because they cannot capture the features that play key roles in the biological functions of the target protein. Furthermore, single-target inhibitors are often susceptible to drug resistance and are ineffective for complex diseases such as cancers. Therefore, a new strategy is required for enriching the hit rate and identifying multitarget inhibitors. To address these issues, we propose the pathway-based screening strategy (called PathSiMMap) to derive binding mechanisms for increasing the hit rate and discovering multitarget inhibitors using site-moiety maps. This strategy simultaneously screens multiple target proteins in the same pathway; these proteins bind intermediates with common substructures. These proteins possess similar conserved binding environments (pathway anchors) when the product of one protein is the substrate of the next protein in the pathway despite their low sequence identity and structure similarity. We successfully discovered two multitarget inhibitors with IC50 of <10 µM for shikimate dehydrogenase and shikimate kinase in the shikimate pathway of Helicobacter pylori. Furthermore, we found two selective inhibitors (IC50 of <10 µM) for shikimate dehydrogenase using the specific anchors derived by our method. Our experimental results reveal that this strategy can enhance the hit rates and the pathway anchors are highly conserved and important for biological functions. We believe that our strategy provides a great value for elucidating protein binding mechanisms and discovering multitarget inhibitors.http://europepmc.org/articles/PMC3701698?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Kai-Cheng Hsu
Wen-Chi Cheng
Yen-Fu Chen
Wen-Ching Wang
Jinn-Moon Yang
spellingShingle Kai-Cheng Hsu
Wen-Chi Cheng
Yen-Fu Chen
Wen-Ching Wang
Jinn-Moon Yang
Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
PLoS Computational Biology
author_facet Kai-Cheng Hsu
Wen-Chi Cheng
Yen-Fu Chen
Wen-Ching Wang
Jinn-Moon Yang
author_sort Kai-Cheng Hsu
title Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
title_short Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
title_full Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
title_fullStr Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
title_full_unstemmed Pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
title_sort pathway-based screening strategy for multitarget inhibitors of diverse proteins in metabolic pathways.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2013-01-01
description Many virtual screening methods have been developed for identifying single-target inhibitors based on the strategy of "one-disease, one-target, one-drug". The hit rates of these methods are often low because they cannot capture the features that play key roles in the biological functions of the target protein. Furthermore, single-target inhibitors are often susceptible to drug resistance and are ineffective for complex diseases such as cancers. Therefore, a new strategy is required for enriching the hit rate and identifying multitarget inhibitors. To address these issues, we propose the pathway-based screening strategy (called PathSiMMap) to derive binding mechanisms for increasing the hit rate and discovering multitarget inhibitors using site-moiety maps. This strategy simultaneously screens multiple target proteins in the same pathway; these proteins bind intermediates with common substructures. These proteins possess similar conserved binding environments (pathway anchors) when the product of one protein is the substrate of the next protein in the pathway despite their low sequence identity and structure similarity. We successfully discovered two multitarget inhibitors with IC50 of <10 µM for shikimate dehydrogenase and shikimate kinase in the shikimate pathway of Helicobacter pylori. Furthermore, we found two selective inhibitors (IC50 of <10 µM) for shikimate dehydrogenase using the specific anchors derived by our method. Our experimental results reveal that this strategy can enhance the hit rates and the pathway anchors are highly conserved and important for biological functions. We believe that our strategy provides a great value for elucidating protein binding mechanisms and discovering multitarget inhibitors.
url http://europepmc.org/articles/PMC3701698?pdf=render
work_keys_str_mv AT kaichenghsu pathwaybasedscreeningstrategyformultitargetinhibitorsofdiverseproteinsinmetabolicpathways
AT wenchicheng pathwaybasedscreeningstrategyformultitargetinhibitorsofdiverseproteinsinmetabolicpathways
AT yenfuchen pathwaybasedscreeningstrategyformultitargetinhibitorsofdiverseproteinsinmetabolicpathways
AT wenchingwang pathwaybasedscreeningstrategyformultitargetinhibitorsofdiverseproteinsinmetabolicpathways
AT jinnmoonyang pathwaybasedscreeningstrategyformultitargetinhibitorsofdiverseproteinsinmetabolicpathways
_version_ 1724990957202440192