Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.

The observed genetic alterations of various extracellular and intracellular WNT (Wingless, Int-1 proto-oncogene) signaling components can result in an increase or decrease in gene expression, and hence can be obstructed proficiently. These genetics target sites may include the prevention of WNT-FZD...

Full description

Bibliographic Details
Main Authors: Qurrat U Ain, Umair Seemab, Sajid Rashid, Muhammad Sulaman Nawaz, Mohammad A Kamal
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3556074?pdf=render
id doaj-9319e21754dd43979b86444396e7d344
record_format Article
spelling doaj-9319e21754dd43979b86444396e7d3442020-11-25T01:22:44ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0181e5463010.1371/journal.pone.0054630Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.Qurrat U AinUmair SeemabSajid RashidMuhammad Sulaman NawazMohammad A KamalThe observed genetic alterations of various extracellular and intracellular WNT (Wingless, Int-1 proto-oncogene) signaling components can result in an increase or decrease in gene expression, and hence can be obstructed proficiently. These genetics target sites may include the prevention of WNT-FZD (Frizzled) binding, destruction of β-catenin and formation of Axin, APC and GSK-3β complex. Hence, the localized targeting of these interacting partners can help in devising novel inhibitors against WNT signaling. Our present study is an extension of our previous work, in which we proposed the co-regulated expression pattern of the WNT gene cluster (WNT-1, WNT-6, WNT-10A and WNT-10B) in human breast carcinoma. We present here the computationally modeled three dimensional structure of human WNT-1 in complex with the FZD-1 CRD (Cysteine Rich Domain) receptor. The dimeric cysteine-rich domain was found to fit into the evolutionarily conserved U-shaped groove of WNT protein. The two ends of the U- shaped cleft contain N-terminal and C-terminal hydrophobic residues, thus providing a strong hydrophobic moiety for the frizzled receptor and serving as the largest binding pocket for WNT-FZD interaction. Detailed structural analysis of this cleft revealed a maximum atomic distance of ~28 Å at the surface, narrowing down to ~17 Å and again increasing up to ~27 Å at the bottom. Altogether, structural prediction analysis of WNT proteins was performed to reveal newer details about post-translational modification sites and to map the novel pharmacophore models for potent WNT inhibitors.http://europepmc.org/articles/PMC3556074?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Qurrat U Ain
Umair Seemab
Sajid Rashid
Muhammad Sulaman Nawaz
Mohammad A Kamal
spellingShingle Qurrat U Ain
Umair Seemab
Sajid Rashid
Muhammad Sulaman Nawaz
Mohammad A Kamal
Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
PLoS ONE
author_facet Qurrat U Ain
Umair Seemab
Sajid Rashid
Muhammad Sulaman Nawaz
Mohammad A Kamal
author_sort Qurrat U Ain
title Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
title_short Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
title_full Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
title_fullStr Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
title_full_unstemmed Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing.
title_sort prediction of structure of human wnt-crd (fzd) complex for computational drug repurposing.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description The observed genetic alterations of various extracellular and intracellular WNT (Wingless, Int-1 proto-oncogene) signaling components can result in an increase or decrease in gene expression, and hence can be obstructed proficiently. These genetics target sites may include the prevention of WNT-FZD (Frizzled) binding, destruction of β-catenin and formation of Axin, APC and GSK-3β complex. Hence, the localized targeting of these interacting partners can help in devising novel inhibitors against WNT signaling. Our present study is an extension of our previous work, in which we proposed the co-regulated expression pattern of the WNT gene cluster (WNT-1, WNT-6, WNT-10A and WNT-10B) in human breast carcinoma. We present here the computationally modeled three dimensional structure of human WNT-1 in complex with the FZD-1 CRD (Cysteine Rich Domain) receptor. The dimeric cysteine-rich domain was found to fit into the evolutionarily conserved U-shaped groove of WNT protein. The two ends of the U- shaped cleft contain N-terminal and C-terminal hydrophobic residues, thus providing a strong hydrophobic moiety for the frizzled receptor and serving as the largest binding pocket for WNT-FZD interaction. Detailed structural analysis of this cleft revealed a maximum atomic distance of ~28 Å at the surface, narrowing down to ~17 Å and again increasing up to ~27 Å at the bottom. Altogether, structural prediction analysis of WNT proteins was performed to reveal newer details about post-translational modification sites and to map the novel pharmacophore models for potent WNT inhibitors.
url http://europepmc.org/articles/PMC3556074?pdf=render
work_keys_str_mv AT qurratuain predictionofstructureofhumanwntcrdfzdcomplexforcomputationaldrugrepurposing
AT umairseemab predictionofstructureofhumanwntcrdfzdcomplexforcomputationaldrugrepurposing
AT sajidrashid predictionofstructureofhumanwntcrdfzdcomplexforcomputationaldrugrepurposing
AT muhammadsulamannawaz predictionofstructureofhumanwntcrdfzdcomplexforcomputationaldrugrepurposing
AT mohammadakamal predictionofstructureofhumanwntcrdfzdcomplexforcomputationaldrugrepurposing
_version_ 1725125787059748864