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Modeling and structural analysis of evolutionarily diverse S8 family serine proteases

Serine proteases are an abundant class of enzymes that are involved in a wide range of physiological processes and are classified into clans sharing structural homology. The active site of the subtilisin-like clan contains a catalytic triad in the order Asp, His, Ser (S8 family) or a catalytic tetra...

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Autores principales: Laskar, Aparna, Rodger, Euan James, Chatterjee, Aniruddha, Mandal, Chhabinath
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Biomedical Informatics 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3218418/
https://www.ncbi.nlm.nih.gov/pubmed/22125392
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author Laskar, Aparna
Rodger, Euan James
Chatterjee, Aniruddha
Mandal, Chhabinath
author_facet Laskar, Aparna
Rodger, Euan James
Chatterjee, Aniruddha
Mandal, Chhabinath
author_sort Laskar, Aparna
collection PubMed
description Serine proteases are an abundant class of enzymes that are involved in a wide range of physiological processes and are classified into clans sharing structural homology. The active site of the subtilisin-like clan contains a catalytic triad in the order Asp, His, Ser (S8 family) or a catalytic tetrad in the order Glu, Asp and Ser (S53 family). The core structure and active site geometry of these proteases is of interest for many applications. The aim of this study was to investigate the structural properties of different S8 family serine proteases from a diverse range of taxa using molecular modeling techniques. In conjunction with 12 experimentally determined three-dimensional structures of S8 family members, our predicted structures from an archaeon, protozoan and a plant were used for analysis of the catalytic core. Amino acid sequences were obtained from the MEROPS database and submitted to the LOOPP server for threading based structure prediction. The predicted structures were refined and validated using PROCHECK, SCRWL and MODELYN. Investigation of secondary structures and electrostatic surface potential was performed using MOLMOL. Encompassing a wide range of taxa, our structural analysis provides an evolutionary perspective on S8 family serine proteases. Focusing on the common core containing the catalytic site of the enzyme, the analysis presented here is beneficial for future molecular modeling strategies and structure-based rational drug design.
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spelling pubmed-32184182011-11-28 Modeling and structural analysis of evolutionarily diverse S8 family serine proteases Laskar, Aparna Rodger, Euan James Chatterjee, Aniruddha Mandal, Chhabinath Bioinformation Hypothesis Serine proteases are an abundant class of enzymes that are involved in a wide range of physiological processes and are classified into clans sharing structural homology. The active site of the subtilisin-like clan contains a catalytic triad in the order Asp, His, Ser (S8 family) or a catalytic tetrad in the order Glu, Asp and Ser (S53 family). The core structure and active site geometry of these proteases is of interest for many applications. The aim of this study was to investigate the structural properties of different S8 family serine proteases from a diverse range of taxa using molecular modeling techniques. In conjunction with 12 experimentally determined three-dimensional structures of S8 family members, our predicted structures from an archaeon, protozoan and a plant were used for analysis of the catalytic core. Amino acid sequences were obtained from the MEROPS database and submitted to the LOOPP server for threading based structure prediction. The predicted structures were refined and validated using PROCHECK, SCRWL and MODELYN. Investigation of secondary structures and electrostatic surface potential was performed using MOLMOL. Encompassing a wide range of taxa, our structural analysis provides an evolutionary perspective on S8 family serine proteases. Focusing on the common core containing the catalytic site of the enzyme, the analysis presented here is beneficial for future molecular modeling strategies and structure-based rational drug design. Biomedical Informatics 2011-10-31 /pmc/articles/PMC3218418/ /pubmed/22125392 Text en © 2011 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
Laskar, Aparna
Rodger, Euan James
Chatterjee, Aniruddha
Mandal, Chhabinath
Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title_full Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title_fullStr Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title_full_unstemmed Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title_short Modeling and structural analysis of evolutionarily diverse S8 family serine proteases
title_sort modeling and structural analysis of evolutionarily diverse s8 family serine proteases
topic Hypothesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3218418/
https://www.ncbi.nlm.nih.gov/pubmed/22125392
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