Homology Modeling and Structural Dynamics of the Glucose Oxidase

Glucose oxidase from Aspergillus niger IPBCC.08.610 (GOD_IPBCC) is a locally sourced flavoenzyme from Indonesia that can potentially be developed in a variety of industrial processes. Although this enzyme has a high activity in catalyzing the redox reactions, the use of this enzyme was still limited...

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Main Authors: Farhan Azhwin Maulana, Laksmi Ambarsari, Setyanto Tri Wahyudi
Format: Article
Language:English
Published: Universitas Gadjah Mada 2019-12-01
Series:Indonesian Journal of Chemistry
Subjects:
Online Access:https://jurnal.ugm.ac.id/ijc/article/view/39135
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spelling doaj-8ef531c2e31c4ee9bd276a26c8c78aba2020-11-25T02:55:45ZengUniversitas Gadjah MadaIndonesian Journal of Chemistry1411-94202460-15782019-12-01201435310.22146/ijc.3913523663Homology Modeling and Structural Dynamics of the Glucose OxidaseFarhan Azhwin Maulana0Laksmi Ambarsari1Setyanto Tri Wahyudi2Master of Biochemistry Program, Postgraduate School, Bogor Agricultural University, Kampus IPB Dramaga, Bogor 16680, West Java, IndonesiaMolecular Biology Division, Department of Biochemistry, Bogor Agricultural University, Kampus IPB Dramaga, Bogor 16680, West Java, IndonesiaComputational Biophysics and Molecular Modeling Research Group, Department of Biophysics, Bogor Agricultural University, Kampus IPB Dramaga, Bogor 16680, West Java, IndonesiaGlucose oxidase from Aspergillus niger IPBCC.08.610 (GOD_IPBCC) is a locally sourced flavoenzyme from Indonesia that can potentially be developed in a variety of industrial processes. Although this enzyme has a high activity in catalyzing the redox reactions, the use of this enzyme was still limited to be applied as glucose biosensor. Using information from the amino acid sequences, a computational structure of GOD_IPBCC was therefore designed by homology modeling method using two homologous structures of GOD from protein data bank (1CF3 and 5NIT) as the templates. The quality of the resulting structures was evaluated geometrically for selection of the best model, and subsequently, 50 ns of MD simulations were carried out for the selected model as well as the corresponding template. Results obtained from the validation analysis showed that the 1CF3 template-built structure was selected as the best reliable model. The structural comparison exhibited that the best-modeled structure consisted of two functional domains and three catalytic residues similarly to the corresponding experimental structure. The overall dynamic behavior of the 50 ns of the structure was structurally stable and comparable with that of the positive control both from globally and locally observations. Implications of these stable nature within the best-modeled structure unfold the possibilities in search of notable residues and their roles to enhance enzyme thermostability.https://jurnal.ugm.ac.id/ijc/article/view/39135glucose oxidasehomology modelingmolecular dynamicsthree-dimensional structure
collection DOAJ
language English
format Article
sources DOAJ
author Farhan Azhwin Maulana
Laksmi Ambarsari
Setyanto Tri Wahyudi
spellingShingle Farhan Azhwin Maulana
Laksmi Ambarsari
Setyanto Tri Wahyudi
Homology Modeling and Structural Dynamics of the Glucose Oxidase
Indonesian Journal of Chemistry
glucose oxidase
homology modeling
molecular dynamics
three-dimensional structure
author_facet Farhan Azhwin Maulana
Laksmi Ambarsari
Setyanto Tri Wahyudi
author_sort Farhan Azhwin Maulana
title Homology Modeling and Structural Dynamics of the Glucose Oxidase
title_short Homology Modeling and Structural Dynamics of the Glucose Oxidase
title_full Homology Modeling and Structural Dynamics of the Glucose Oxidase
title_fullStr Homology Modeling and Structural Dynamics of the Glucose Oxidase
title_full_unstemmed Homology Modeling and Structural Dynamics of the Glucose Oxidase
title_sort homology modeling and structural dynamics of the glucose oxidase
publisher Universitas Gadjah Mada
series Indonesian Journal of Chemistry
issn 1411-9420
2460-1578
publishDate 2019-12-01
description Glucose oxidase from Aspergillus niger IPBCC.08.610 (GOD_IPBCC) is a locally sourced flavoenzyme from Indonesia that can potentially be developed in a variety of industrial processes. Although this enzyme has a high activity in catalyzing the redox reactions, the use of this enzyme was still limited to be applied as glucose biosensor. Using information from the amino acid sequences, a computational structure of GOD_IPBCC was therefore designed by homology modeling method using two homologous structures of GOD from protein data bank (1CF3 and 5NIT) as the templates. The quality of the resulting structures was evaluated geometrically for selection of the best model, and subsequently, 50 ns of MD simulations were carried out for the selected model as well as the corresponding template. Results obtained from the validation analysis showed that the 1CF3 template-built structure was selected as the best reliable model. The structural comparison exhibited that the best-modeled structure consisted of two functional domains and three catalytic residues similarly to the corresponding experimental structure. The overall dynamic behavior of the 50 ns of the structure was structurally stable and comparable with that of the positive control both from globally and locally observations. Implications of these stable nature within the best-modeled structure unfold the possibilities in search of notable residues and their roles to enhance enzyme thermostability.
topic glucose oxidase
homology modeling
molecular dynamics
three-dimensional structure
url https://jurnal.ugm.ac.id/ijc/article/view/39135
work_keys_str_mv AT farhanazhwinmaulana homologymodelingandstructuraldynamicsoftheglucoseoxidase
AT laksmiambarsari homologymodelingandstructuraldynamicsoftheglucoseoxidase
AT setyantotriwahyudi homologymodelingandstructuraldynamicsoftheglucoseoxidase
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