In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes

B-amylase is a hydrolytic enzyme that is involved in breaking down starch and producing energy. Since the discovery of β-amylase, it has been applied in various applications especially in the food industry. In this study, a novel β-amylase from Clostridium thermosuluregen, a thermophilic anaerobic b...

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Main Author: Nayel, Shafiqa
Format: Thesis
Language:English
Published: 2020
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Online Access:http://eprints.utm.my/id/eprint/102131/1/ShafiqaNayelMFS2020.pdf.pdf
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spelling my-utm-ep.1021312023-08-05T02:46:33Z In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes 2020 Nayel, Shafiqa Q Science (General) B-amylase is a hydrolytic enzyme that is involved in breaking down starch and producing energy. Since the discovery of β-amylase, it has been applied in various applications especially in the food industry. In this study, a novel β-amylase from Clostridium thermosuluregen, a thermophilic anaerobic bacterium that ferments its extracellular emulsion to ethanol at 62 ℃ was modelled and studied using bioinformatics tools and compared with B. cereus B-amylases that functions at mesophilic conditions. The results showed that the overall structural conformations, secondary structures, and important residues involved in active and binding sites were identified in both proteins. The results revealed that the modelled B-amylase of C. thermosulfuregen is very similar with respect to the global conformation, location of active and binding sites. Both proteins showed identical structural domains with the thermophilic variant possessing a high percentage of hydrophobic amino acid residues, polar amino acid residues, and differences in secondary composition such as loops and beta sheets as the potential evolutionary thermal adaptations that make it stable enzyme that functions up to 70 ℃. The results suggest that the thermal stability are not dependent on one single unique mechanism and may use one or a combination of the mechanisms to sustain its structural conformation at a higher operating temperature. Overall, considering the common properties of this modelled protein with the B-amylase of B. cereus, it can be assumed that if the B-amylase of C. thermosulfuregen were expressed in-vitro, it would produce a stable protein that possesses the hydrolysis function for C. thermosulfuregen to break down the starch and sugar formation. 2020 Thesis http://eprints.utm.my/id/eprint/102131/ http://eprints.utm.my/id/eprint/102131/1/ShafiqaNayelMFS2020.pdf.pdf application/pdf en public http://dms.library.utm.my:8080/vital/access/manager/Repository/vital:146307 masters Universiti Teknologi Malaysia Faculty of Science
institution Universiti Teknologi Malaysia
collection UTM Institutional Repository
language English
topic Q Science (General)
spellingShingle Q Science (General)
Nayel, Shafiqa
In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
description B-amylase is a hydrolytic enzyme that is involved in breaking down starch and producing energy. Since the discovery of β-amylase, it has been applied in various applications especially in the food industry. In this study, a novel β-amylase from Clostridium thermosuluregen, a thermophilic anaerobic bacterium that ferments its extracellular emulsion to ethanol at 62 ℃ was modelled and studied using bioinformatics tools and compared with B. cereus B-amylases that functions at mesophilic conditions. The results showed that the overall structural conformations, secondary structures, and important residues involved in active and binding sites were identified in both proteins. The results revealed that the modelled B-amylase of C. thermosulfuregen is very similar with respect to the global conformation, location of active and binding sites. Both proteins showed identical structural domains with the thermophilic variant possessing a high percentage of hydrophobic amino acid residues, polar amino acid residues, and differences in secondary composition such as loops and beta sheets as the potential evolutionary thermal adaptations that make it stable enzyme that functions up to 70 ℃. The results suggest that the thermal stability are not dependent on one single unique mechanism and may use one or a combination of the mechanisms to sustain its structural conformation at a higher operating temperature. Overall, considering the common properties of this modelled protein with the B-amylase of B. cereus, it can be assumed that if the B-amylase of C. thermosulfuregen were expressed in-vitro, it would produce a stable protein that possesses the hydrolysis function for C. thermosulfuregen to break down the starch and sugar formation.
format Thesis
qualification_level Master's degree
author Nayel, Shafiqa
author_facet Nayel, Shafiqa
author_sort Nayel, Shafiqa
title In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
title_short In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
title_full In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
title_fullStr In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
title_full_unstemmed In-silico structural analysis of a beta-amylase from Clostridium Thermosulfuregenes
title_sort in-silico structural analysis of a beta-amylase from clostridium thermosulfuregenes
granting_institution Universiti Teknologi Malaysia
granting_department Faculty of Science
publishDate 2020
url http://eprints.utm.my/id/eprint/102131/1/ShafiqaNayelMFS2020.pdf.pdf
_version_ 1776100853162180608