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Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study

The molecular integrity of the active site of phytases from fungi is critical for maintaining phytase function as efficient catalytic machines. In this study, the molecular dynamics (MD) of two monomers of phytase B from Aspergillus niger, the disulfide intact monomer (NAP) and a monomer with broken...

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Detalles Bibliográficos
Autores principales: Kumar, Kapil, Dixit, Mudit, Khire, JM, Pal, Sourav
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Biomedical Informatics 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3867648/
https://www.ncbi.nlm.nih.gov/pubmed/24391358
http://dx.doi.org/10.6026/97320630009963
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author Kumar, Kapil
Dixit, Mudit
Khire, JM
Pal, Sourav
author_facet Kumar, Kapil
Dixit, Mudit
Khire, JM
Pal, Sourav
author_sort Kumar, Kapil
collection PubMed
description The molecular integrity of the active site of phytases from fungi is critical for maintaining phytase function as efficient catalytic machines. In this study, the molecular dynamics (MD) of two monomers of phytase B from Aspergillus niger, the disulfide intact monomer (NAP) and a monomer with broken disulfide bonds (RAP), were simulated to explore the conformational basis of the loss of catalytic activity when disulfide bonds are broken. The simulations indicated that the overall secondary and tertiary structures of the two monomers were nearly identical but differed in some crucial secondary–structural elements in the vicinity of the disulfide bonds and catalytic site. Disulfide bonds stabilize the β-sheet that contains residue Arg66 of the active site and destabilize the α-helix that contains the catalytic residue Asp319. This stabilization and destabilization lead to changes in the shape of the active–site pocket. Functionally important hydrogen bonds and atomic fluctuations in the catalytic pocket change during the RAP simulation. None of the disulfide bonds are in or near the catalytic pocket but are most likely essential for maintaining the native conformation of the catalytic site. ABBREVIATIONS: PhyB - 2.5 pH acid phophatese from Aspergillus niger, NAP - disulphide intact monomer of Phytase B, RAP - disulphide reduced monomer of Phytase B, Rg - radius of gyration, RMSD - root mean square deviation, MD - molecular dynamics.
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spelling pubmed-38676482014-01-03 Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study Kumar, Kapil Dixit, Mudit Khire, JM Pal, Sourav Bioinformation Hypothesis The molecular integrity of the active site of phytases from fungi is critical for maintaining phytase function as efficient catalytic machines. In this study, the molecular dynamics (MD) of two monomers of phytase B from Aspergillus niger, the disulfide intact monomer (NAP) and a monomer with broken disulfide bonds (RAP), were simulated to explore the conformational basis of the loss of catalytic activity when disulfide bonds are broken. The simulations indicated that the overall secondary and tertiary structures of the two monomers were nearly identical but differed in some crucial secondary–structural elements in the vicinity of the disulfide bonds and catalytic site. Disulfide bonds stabilize the β-sheet that contains residue Arg66 of the active site and destabilize the α-helix that contains the catalytic residue Asp319. This stabilization and destabilization lead to changes in the shape of the active–site pocket. Functionally important hydrogen bonds and atomic fluctuations in the catalytic pocket change during the RAP simulation. None of the disulfide bonds are in or near the catalytic pocket but are most likely essential for maintaining the native conformation of the catalytic site. ABBREVIATIONS: PhyB - 2.5 pH acid phophatese from Aspergillus niger, NAP - disulphide intact monomer of Phytase B, RAP - disulphide reduced monomer of Phytase B, Rg - radius of gyration, RMSD - root mean square deviation, MD - molecular dynamics. Biomedical Informatics 2013-12-06 /pmc/articles/PMC3867648/ /pubmed/24391358 http://dx.doi.org/10.6026/97320630009963 Text en © 2013 Biomedical Informatics This is an open-access article, which permits unrestricted use, distribution, and reproduction in any medium, for non-commercial purposes, provided the original author and source are credited.
spellingShingle Hypothesis
Kumar, Kapil
Dixit, Mudit
Khire, JM
Pal, Sourav
Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title_full Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title_fullStr Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title_full_unstemmed Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title_short Atomistic details of effect of disulfide bond reduction on active site of Phytase B from Aspergillus niger: A MD Study
title_sort atomistic details of effect of disulfide bond reduction on active site of phytase b from aspergillus niger: a md study
topic Hypothesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3867648/
https://www.ncbi.nlm.nih.gov/pubmed/24391358
http://dx.doi.org/10.6026/97320630009963
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