Cargando…

Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor

The natural variant C491T (rs1800088) in ADRB2 gene substitutes Threonine to Isoleucine at 164(th) position in β2AR and results in receptor sequestration and altered binding of agonists. Present investigation pursues to identify the effect of T164I variation on function and structure of β2AR through...

Descripción completa

Detalles Bibliográficos
Autores principales: Bandaru, Srinivas, Alvala, Mallika, Nayarisseri, Anuraj, Sharda, Saphy, Goud, Himshikha, Mundluru, Hema Prasad, Singh, Sanjeev Kumar
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5650161/
https://www.ncbi.nlm.nih.gov/pubmed/29053759
http://dx.doi.org/10.1371/journal.pone.0186666
_version_ 1783272655639543808
author Bandaru, Srinivas
Alvala, Mallika
Nayarisseri, Anuraj
Sharda, Saphy
Goud, Himshikha
Mundluru, Hema Prasad
Singh, Sanjeev Kumar
author_facet Bandaru, Srinivas
Alvala, Mallika
Nayarisseri, Anuraj
Sharda, Saphy
Goud, Himshikha
Mundluru, Hema Prasad
Singh, Sanjeev Kumar
author_sort Bandaru, Srinivas
collection PubMed
description The natural variant C491T (rs1800088) in ADRB2 gene substitutes Threonine to Isoleucine at 164(th) position in β2AR and results in receptor sequestration and altered binding of agonists. Present investigation pursues to identify the effect of T164I variation on function and structure of β2AR through systematic computational approaches. The study, in addition, addresses altered binding of salbutamol in T164I variant through molecular dynamic simulations. Methods involving changes in free energy, solvent accessibility surface area, root mean square deviations and analysis of binding cavity revealed structural perturbations in receptor to incur upon T164I substitution. For comprehensive understanding of receptor upon substitution, OPLS force field aided molecular dynamic simulations were performed for 10 ns. Simulations revealed massive structural departure for T164I β2AR variant from the native state along with considerably higher root mean square fluctuations of residues near the cavity. Affinity prediction by molecular docking showed two folds reduced affinity of salbutamol in T164I variant. To validate the credibility docking results, simulations for ligand-receptor complex were performed which demonstrated unstable salbutamol-T164I β2AR complex formation. Further, analysis of interactions in course of simulations revealed reduced ligand-receptor interactions of salbutamol in T164I variant. Taken together, studies herein provide structural rationales for suboptimal binding of salbutamol in T164I variant through integrated molecular modeling approaches.
format Online
Article
Text
id pubmed-5650161
institution National Center for Biotechnology Information
language English
publishDate 2017
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-56501612017-11-03 Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor Bandaru, Srinivas Alvala, Mallika Nayarisseri, Anuraj Sharda, Saphy Goud, Himshikha Mundluru, Hema Prasad Singh, Sanjeev Kumar PLoS One Research Article The natural variant C491T (rs1800088) in ADRB2 gene substitutes Threonine to Isoleucine at 164(th) position in β2AR and results in receptor sequestration and altered binding of agonists. Present investigation pursues to identify the effect of T164I variation on function and structure of β2AR through systematic computational approaches. The study, in addition, addresses altered binding of salbutamol in T164I variant through molecular dynamic simulations. Methods involving changes in free energy, solvent accessibility surface area, root mean square deviations and analysis of binding cavity revealed structural perturbations in receptor to incur upon T164I substitution. For comprehensive understanding of receptor upon substitution, OPLS force field aided molecular dynamic simulations were performed for 10 ns. Simulations revealed massive structural departure for T164I β2AR variant from the native state along with considerably higher root mean square fluctuations of residues near the cavity. Affinity prediction by molecular docking showed two folds reduced affinity of salbutamol in T164I variant. To validate the credibility docking results, simulations for ligand-receptor complex were performed which demonstrated unstable salbutamol-T164I β2AR complex formation. Further, analysis of interactions in course of simulations revealed reduced ligand-receptor interactions of salbutamol in T164I variant. Taken together, studies herein provide structural rationales for suboptimal binding of salbutamol in T164I variant through integrated molecular modeling approaches. Public Library of Science 2017-10-20 /pmc/articles/PMC5650161/ /pubmed/29053759 http://dx.doi.org/10.1371/journal.pone.0186666 Text en © 2017 Bandaru 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
Bandaru, Srinivas
Alvala, Mallika
Nayarisseri, Anuraj
Sharda, Saphy
Goud, Himshikha
Mundluru, Hema Prasad
Singh, Sanjeev Kumar
Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title_full Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title_fullStr Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title_full_unstemmed Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title_short Molecular dynamic simulations reveal suboptimal binding of salbutamol in T164I variant of β2 adrenergic receptor
title_sort molecular dynamic simulations reveal suboptimal binding of salbutamol in t164i variant of β2 adrenergic receptor
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5650161/
https://www.ncbi.nlm.nih.gov/pubmed/29053759
http://dx.doi.org/10.1371/journal.pone.0186666
work_keys_str_mv AT bandarusrinivas moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT alvalamallika moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT nayarisserianuraj moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT shardasaphy moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT goudhimshikha moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT mundluruhemaprasad moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor
AT singhsanjeevkumar moleculardynamicsimulationsrevealsuboptimalbindingofsalbutamolint164ivariantofb2adrenergicreceptor