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Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter

The ATP-binding cassette transporter A1 (ABCA1) is a membrane-bound exporter protein involved in regulating serum HDL level by exporting cholesterol and phospholipids to load up in lipid-poor ApoA-I and ApoE, which allows the formation of nascent HDL. Mutations in the ABCA1 gene, when presents in bo...

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Autores principales: Dash, Raju, Ali, Md. Chayan, Rana, Md. Liton, Munni, Yeasmin Akter, Barua, Largess, Jahan, Israt, Haque, Mst. Fatema, Hannan, Md. Abdul, Moon, Il Soo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7589834/
https://www.ncbi.nlm.nih.gov/pubmed/33066695
http://dx.doi.org/10.3390/ijms21207606
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author Dash, Raju
Ali, Md. Chayan
Rana, Md. Liton
Munni, Yeasmin Akter
Barua, Largess
Jahan, Israt
Haque, Mst. Fatema
Hannan, Md. Abdul
Moon, Il Soo
author_facet Dash, Raju
Ali, Md. Chayan
Rana, Md. Liton
Munni, Yeasmin Akter
Barua, Largess
Jahan, Israt
Haque, Mst. Fatema
Hannan, Md. Abdul
Moon, Il Soo
author_sort Dash, Raju
collection PubMed
description The ATP-binding cassette transporter A1 (ABCA1) is a membrane-bound exporter protein involved in regulating serum HDL level by exporting cholesterol and phospholipids to load up in lipid-poor ApoA-I and ApoE, which allows the formation of nascent HDL. Mutations in the ABCA1 gene, when presents in both alleles, disrupt the canonical function of ABCA1, which associates with many disorders related to lipid transport. Although many studies have reported the phenotypic effects of a large number of ABCA1 variants, the pathological effect of non-synonymous polymorphisms (nsSNPs) in ABCA1 remains elusive. Therefore, aiming at exploring the structural and functional consequences of nsSNPs in ABCA1, in this study, we employed an integrated computational approach consisting of nine well-known in silico tools to identify damaging SNPs and molecular dynamics (MD) simulation to get insights into the magnitudes of the damaging effects. In silico tools revealed four nsSNPs as being most deleterious, where the two SNPs (G1050V and S1067C) are identified as the highly conserved and functional disrupting mutations located in the NBD1 domain. MD simulation suggested that both SNPs, G1050V and S1067C, changed the overall structural flexibility and dynamics of NBD1, and induced substantial alteration in the structural organization of ATP binding site. Taken together, these findings direct future studies to get more insights into the role of these variants in the loss of the ABCA1 function.
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spelling pubmed-75898342020-10-29 Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter Dash, Raju Ali, Md. Chayan Rana, Md. Liton Munni, Yeasmin Akter Barua, Largess Jahan, Israt Haque, Mst. Fatema Hannan, Md. Abdul Moon, Il Soo Int J Mol Sci Article The ATP-binding cassette transporter A1 (ABCA1) is a membrane-bound exporter protein involved in regulating serum HDL level by exporting cholesterol and phospholipids to load up in lipid-poor ApoA-I and ApoE, which allows the formation of nascent HDL. Mutations in the ABCA1 gene, when presents in both alleles, disrupt the canonical function of ABCA1, which associates with many disorders related to lipid transport. Although many studies have reported the phenotypic effects of a large number of ABCA1 variants, the pathological effect of non-synonymous polymorphisms (nsSNPs) in ABCA1 remains elusive. Therefore, aiming at exploring the structural and functional consequences of nsSNPs in ABCA1, in this study, we employed an integrated computational approach consisting of nine well-known in silico tools to identify damaging SNPs and molecular dynamics (MD) simulation to get insights into the magnitudes of the damaging effects. In silico tools revealed four nsSNPs as being most deleterious, where the two SNPs (G1050V and S1067C) are identified as the highly conserved and functional disrupting mutations located in the NBD1 domain. MD simulation suggested that both SNPs, G1050V and S1067C, changed the overall structural flexibility and dynamics of NBD1, and induced substantial alteration in the structural organization of ATP binding site. Taken together, these findings direct future studies to get more insights into the role of these variants in the loss of the ABCA1 function. MDPI 2020-10-14 /pmc/articles/PMC7589834/ /pubmed/33066695 http://dx.doi.org/10.3390/ijms21207606 Text en © 2020 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Dash, Raju
Ali, Md. Chayan
Rana, Md. Liton
Munni, Yeasmin Akter
Barua, Largess
Jahan, Israt
Haque, Mst. Fatema
Hannan, Md. Abdul
Moon, Il Soo
Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title_full Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title_fullStr Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title_full_unstemmed Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title_short Computational SNP Analysis and Molecular Simulation Revealed the Most Deleterious Missense Variants in the NBD1 Domain of Human ABCA1 Transporter
title_sort computational snp analysis and molecular simulation revealed the most deleterious missense variants in the nbd1 domain of human abca1 transporter
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7589834/
https://www.ncbi.nlm.nih.gov/pubmed/33066695
http://dx.doi.org/10.3390/ijms21207606
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