Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods

The NLR family caspase recruitment domain-containing protein 4 (NLRC4) inflammasome regulates the inflammatory response. Upregulation of NLRC4 inflammasome has been associated with bacterial infections, cancers, and autoinflammatory disorders (AIDs). The Q657L mutation in the NLRC4 causes AID. Howev...

Full description

Saved in:
Bibliographic Details
Main Authors: Chear, Chai Teng, Ripen, Adiratna Mat, Mohamad, Saharuddin
Format: Article
Published: Taylor & Francis 2022
Subjects:
Online Access:http://eprints.um.edu.my/41448/
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.um.eprints.41448
record_format eprints
spelling my.um.eprints.414482023-09-22T08:03:34Z http://eprints.um.edu.my/41448/ Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods Chear, Chai Teng Ripen, Adiratna Mat Mohamad, Saharuddin QC Physics QD Chemistry The NLR family caspase recruitment domain-containing protein 4 (NLRC4) inflammasome regulates the inflammatory response. Upregulation of NLRC4 inflammasome has been associated with bacterial infections, cancers, and autoinflammatory disorders (AIDs). The Q657L mutation in the NLRC4 causes AID. However, the structural change upon Q657L mutation at the atomic level has not been clearly understood. In this study, we employed in silico predictions along with molecular dynamics (MD) simulations of the homology modelled human wild-type and mutant NLRC4 structures in the resting and activated state to investigate the impact of Q657L mutation on the structural and dynamic changes of NLRC4 protein. The Q657L mutation was predicted to be deleterious by various in silico prediction tools. The MD simulation results demonstrated that the mutation increased the stability of the compactly folded structure and decreased flexibility in the resting state. In the activated state, the stably folded mutant structure had increased solvent accessible surface area, intermolecular hydrogen bonds and binding pocket volume. In addition, the principal component analysis showed that the mutant structures had reduced dynamics in both states. These findings provide insights into structural and dynamic changes of NLRC4 protein due to Q657L mutation at the atomic level. Taylor & Francis 2022-09 Article PeerReviewed Chear, Chai Teng and Ripen, Adiratna Mat and Mohamad, Saharuddin (2022) Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods. Molecular Simulation, 48 (14). pp. 1240-1255. ISSN 0892-7022, DOI https://doi.org/10.1080/08927022.2022.2080822 <https://doi.org/10.1080/08927022.2022.2080822>. 10.1080/08927022.2022.2080822
institution Universiti Malaya
building UM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Malaya
content_source UM Research Repository
url_provider http://eprints.um.edu.my/
topic QC Physics
QD Chemistry
spellingShingle QC Physics
QD Chemistry
Chear, Chai Teng
Ripen, Adiratna Mat
Mohamad, Saharuddin
Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
description The NLR family caspase recruitment domain-containing protein 4 (NLRC4) inflammasome regulates the inflammatory response. Upregulation of NLRC4 inflammasome has been associated with bacterial infections, cancers, and autoinflammatory disorders (AIDs). The Q657L mutation in the NLRC4 causes AID. However, the structural change upon Q657L mutation at the atomic level has not been clearly understood. In this study, we employed in silico predictions along with molecular dynamics (MD) simulations of the homology modelled human wild-type and mutant NLRC4 structures in the resting and activated state to investigate the impact of Q657L mutation on the structural and dynamic changes of NLRC4 protein. The Q657L mutation was predicted to be deleterious by various in silico prediction tools. The MD simulation results demonstrated that the mutation increased the stability of the compactly folded structure and decreased flexibility in the resting state. In the activated state, the stably folded mutant structure had increased solvent accessible surface area, intermolecular hydrogen bonds and binding pocket volume. In addition, the principal component analysis showed that the mutant structures had reduced dynamics in both states. These findings provide insights into structural and dynamic changes of NLRC4 protein due to Q657L mutation at the atomic level.
format Article
author Chear, Chai Teng
Ripen, Adiratna Mat
Mohamad, Saharuddin
author_facet Chear, Chai Teng
Ripen, Adiratna Mat
Mohamad, Saharuddin
author_sort Chear, Chai Teng
title Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
title_short Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
title_full Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
title_fullStr Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
title_full_unstemmed Deciphering the structural and functional impact of Q657L mutation in NLRC4 using computational methods
title_sort deciphering the structural and functional impact of q657l mutation in nlrc4 using computational methods
publisher Taylor & Francis
publishDate 2022
url http://eprints.um.edu.my/41448/
_version_ 1778161674088349696
score 13.214268