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Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1

DORN1 (also known as P2K1) is a plant receptor for extracellular ATP, which belongs to a large gene family of legume-type (L-type) lectin receptor kinases. Extracellular ATP binds to DORN1 with strong affinity through its lectin domain, and the binding triggers a variety of intracellular activities...

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Autores principales: Nguyen, Cuong The, Tanaka, Kiwamu, Cao, Yangrong, Cho, Sung-Hwan, Xu, Dong, Stacey, Gary
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5008829/
https://www.ncbi.nlm.nih.gov/pubmed/27583834
http://dx.doi.org/10.1371/journal.pone.0161894
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author Nguyen, Cuong The
Tanaka, Kiwamu
Cao, Yangrong
Cho, Sung-Hwan
Xu, Dong
Stacey, Gary
author_facet Nguyen, Cuong The
Tanaka, Kiwamu
Cao, Yangrong
Cho, Sung-Hwan
Xu, Dong
Stacey, Gary
author_sort Nguyen, Cuong The
collection PubMed
description DORN1 (also known as P2K1) is a plant receptor for extracellular ATP, which belongs to a large gene family of legume-type (L-type) lectin receptor kinases. Extracellular ATP binds to DORN1 with strong affinity through its lectin domain, and the binding triggers a variety of intracellular activities in response to biotic and abiotic stresses. However, information on the tertiary structure of the ligand binding site of DORN1is lacking, which hampers efforts to fully elucidate the mechanism of receptor action. Available data of the crystal structures from more than 50 L-type lectins enable us to perform an in silico study of molecular interaction between DORN1 and ATP. In this study, we employed a computational approach to develop a tertiary structure model of the DORN1 lectin domain. A blind docking analysis demonstrated that ATP binds to a cavity made by four loops (defined as loops A B, C and D) of the DORN1 lectin domain with high affinity. In silico target docking of ATP to the DORN1 binding site predicted interaction with 12 residues, located on the four loops, via hydrogen bonds and hydrophobic interactions. The ATP binding pocket is structurally similar in location to the carbohydrate binding pocket of the canonical L-type lectins. However, four of the residues predicted to interact with ATP are not conserved between DORN1 and the other carbohydrate-binding lectins, suggesting that diversifying selection acting on these key residues may have led to the ATP binding activity of DORN1. The in silico model was validated by in vitro ATP binding assays using the purified extracellular lectin domain of wild-type DORN1, as well as mutated DORN1 lacking key ATP binding residues.
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spelling pubmed-50088292016-09-27 Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1 Nguyen, Cuong The Tanaka, Kiwamu Cao, Yangrong Cho, Sung-Hwan Xu, Dong Stacey, Gary PLoS One Research Article DORN1 (also known as P2K1) is a plant receptor for extracellular ATP, which belongs to a large gene family of legume-type (L-type) lectin receptor kinases. Extracellular ATP binds to DORN1 with strong affinity through its lectin domain, and the binding triggers a variety of intracellular activities in response to biotic and abiotic stresses. However, information on the tertiary structure of the ligand binding site of DORN1is lacking, which hampers efforts to fully elucidate the mechanism of receptor action. Available data of the crystal structures from more than 50 L-type lectins enable us to perform an in silico study of molecular interaction between DORN1 and ATP. In this study, we employed a computational approach to develop a tertiary structure model of the DORN1 lectin domain. A blind docking analysis demonstrated that ATP binds to a cavity made by four loops (defined as loops A B, C and D) of the DORN1 lectin domain with high affinity. In silico target docking of ATP to the DORN1 binding site predicted interaction with 12 residues, located on the four loops, via hydrogen bonds and hydrophobic interactions. The ATP binding pocket is structurally similar in location to the carbohydrate binding pocket of the canonical L-type lectins. However, four of the residues predicted to interact with ATP are not conserved between DORN1 and the other carbohydrate-binding lectins, suggesting that diversifying selection acting on these key residues may have led to the ATP binding activity of DORN1. The in silico model was validated by in vitro ATP binding assays using the purified extracellular lectin domain of wild-type DORN1, as well as mutated DORN1 lacking key ATP binding residues. Public Library of Science 2016-09-01 /pmc/articles/PMC5008829/ /pubmed/27583834 http://dx.doi.org/10.1371/journal.pone.0161894 Text en © 2016 Nguyen et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Nguyen, Cuong The
Tanaka, Kiwamu
Cao, Yangrong
Cho, Sung-Hwan
Xu, Dong
Stacey, Gary
Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title_full Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title_fullStr Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title_full_unstemmed Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title_short Computational Analysis of the Ligand Binding Site of the Extracellular ATP Receptor, DORN1
title_sort computational analysis of the ligand binding site of the extracellular atp receptor, dorn1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5008829/
https://www.ncbi.nlm.nih.gov/pubmed/27583834
http://dx.doi.org/10.1371/journal.pone.0161894
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