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Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization

Understanding protein stability is critical for the application of enzymes in biotechnological processes. The structural basis for the stability of thermally adapted chitinases has not yet been examined. In this study, the amino acid sequences and X-ray structures of psychrophilic, mesophilic, and h...

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Autores principales: Ang, Dale L., Hoque, Mubasher Zahir, Hossain, Md. Abir, Guerriero, Gea, Berni, Roberto, Hausman, Jean-Francois, Bokhari, Saleem A, Bridge, Wallace J., Siddiqui, Khawar Sohail
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7866400/
https://www.ncbi.nlm.nih.gov/pubmed/33572971
http://dx.doi.org/10.3390/molecules26030707
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author Ang, Dale L.
Hoque, Mubasher Zahir
Hossain, Md. Abir
Guerriero, Gea
Berni, Roberto
Hausman, Jean-Francois
Bokhari, Saleem A
Bridge, Wallace J.
Siddiqui, Khawar Sohail
author_facet Ang, Dale L.
Hoque, Mubasher Zahir
Hossain, Md. Abir
Guerriero, Gea
Berni, Roberto
Hausman, Jean-Francois
Bokhari, Saleem A
Bridge, Wallace J.
Siddiqui, Khawar Sohail
author_sort Ang, Dale L.
collection PubMed
description Understanding protein stability is critical for the application of enzymes in biotechnological processes. The structural basis for the stability of thermally adapted chitinases has not yet been examined. In this study, the amino acid sequences and X-ray structures of psychrophilic, mesophilic, and hyperthermophilic chitinases were analyzed using computational and molecular dynamics (MD) simulation methods. From the findings, the key features associated with higher stability in mesophilic and thermophilic chitinases were fewer and/or shorter loops, oligomerization, and less flexible surface regions. No consistent trends were observed between stability and amino acid composition, structural features, or electrostatic interactions. Instead, unique elements affecting stability were identified in different chitinases. Notably, hyperthermostable chitinase had a much shorter surface loop compared to psychrophilic and mesophilic homologs, implying that the extended floppy surface region in cold-adapted and mesophilic chitinases may have acted as a “weak link” from where unfolding was initiated. MD simulations confirmed that the prevalence and flexibility of the loops adjacent to the active site were greater in low-temperature-adapted chitinases and may have led to the occlusion of the active site at higher temperatures compared to their thermostable homologs. Following this, loop “hot spots” for stabilizing and destabilizing mutations were also identified. This information is not only useful for the elucidation of the structure–stability relationship, but will be crucial for designing and engineering chitinases to have enhanced thermoactivity and to withstand harsh industrial processing conditions
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spelling pubmed-78664002021-02-07 Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization Ang, Dale L. Hoque, Mubasher Zahir Hossain, Md. Abir Guerriero, Gea Berni, Roberto Hausman, Jean-Francois Bokhari, Saleem A Bridge, Wallace J. Siddiqui, Khawar Sohail Molecules Article Understanding protein stability is critical for the application of enzymes in biotechnological processes. The structural basis for the stability of thermally adapted chitinases has not yet been examined. In this study, the amino acid sequences and X-ray structures of psychrophilic, mesophilic, and hyperthermophilic chitinases were analyzed using computational and molecular dynamics (MD) simulation methods. From the findings, the key features associated with higher stability in mesophilic and thermophilic chitinases were fewer and/or shorter loops, oligomerization, and less flexible surface regions. No consistent trends were observed between stability and amino acid composition, structural features, or electrostatic interactions. Instead, unique elements affecting stability were identified in different chitinases. Notably, hyperthermostable chitinase had a much shorter surface loop compared to psychrophilic and mesophilic homologs, implying that the extended floppy surface region in cold-adapted and mesophilic chitinases may have acted as a “weak link” from where unfolding was initiated. MD simulations confirmed that the prevalence and flexibility of the loops adjacent to the active site were greater in low-temperature-adapted chitinases and may have led to the occlusion of the active site at higher temperatures compared to their thermostable homologs. Following this, loop “hot spots” for stabilizing and destabilizing mutations were also identified. This information is not only useful for the elucidation of the structure–stability relationship, but will be crucial for designing and engineering chitinases to have enhanced thermoactivity and to withstand harsh industrial processing conditions MDPI 2021-01-29 /pmc/articles/PMC7866400/ /pubmed/33572971 http://dx.doi.org/10.3390/molecules26030707 Text en © 2021 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
Ang, Dale L.
Hoque, Mubasher Zahir
Hossain, Md. Abir
Guerriero, Gea
Berni, Roberto
Hausman, Jean-Francois
Bokhari, Saleem A
Bridge, Wallace J.
Siddiqui, Khawar Sohail
Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title_full Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title_fullStr Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title_full_unstemmed Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title_short Computational Analysis of Thermal Adaptation in Extremophilic Chitinases: The Achilles’ Heel in Protein Structure and Industrial Utilization
title_sort computational analysis of thermal adaptation in extremophilic chitinases: the achilles’ heel in protein structure and industrial utilization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7866400/
https://www.ncbi.nlm.nih.gov/pubmed/33572971
http://dx.doi.org/10.3390/molecules26030707
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