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in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)

Cinnamoyl CoA reductase (CCR) carries out the first committed step in monolignol biosynthesis and acts as a first regulatory point in lignin formation. CCR shows multiple substrate specificity towards various cinnamoyl CoA esters. Here, in Silico mutagenesis studies of active site residues of Ll-CCR...

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Autores principales: Sonawane, Prashant, Patel, Krunal, Vishwakarma, Rishi Kishore, Singh, Somesh, Khan, Bashir Mohammad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Biomedical Informatics 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3602876/
https://www.ncbi.nlm.nih.gov/pubmed/23515358
http://dx.doi.org/10.6026/97320630009224
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author Sonawane, Prashant
Patel, Krunal
Vishwakarma, Rishi Kishore
Singh, Somesh
Khan, Bashir Mohammad
author_facet Sonawane, Prashant
Patel, Krunal
Vishwakarma, Rishi Kishore
Singh, Somesh
Khan, Bashir Mohammad
author_sort Sonawane, Prashant
collection PubMed
description Cinnamoyl CoA reductase (CCR) carries out the first committed step in monolignol biosynthesis and acts as a first regulatory point in lignin formation. CCR shows multiple substrate specificity towards various cinnamoyl CoA esters. Here, in Silico mutagenesis studies of active site residues of Ll-CCRH1 were carried out. Homology modeling based modeled 3D structure of Ll-CCRH1 was used as template for in Silico mutant preparations. Docking simulations of Ll-CCRH1 mutants with CoA esters by AutoDock Vina tools showed altered substrate specificity as compared to wild type. The study evidences that conformational changes, and change in geometry or architecture of active site pocket occurred following mutations. The altered substrate specificity for active site mutants suggests the possible physiological role of CCR either in lignin formation or in defense system in plants. ABBREVIATIONS: Ll-CCRH1 - Leucaena leucocephala cinnamoyl CoA reductase 1, OPLS - Optimized Potentials for Liquid Simulations, RMSD - Root Mean Square Deviation.
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spelling pubmed-36028762013-03-20 in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1) Sonawane, Prashant Patel, Krunal Vishwakarma, Rishi Kishore Singh, Somesh Khan, Bashir Mohammad Bioinformation Hypothesis Cinnamoyl CoA reductase (CCR) carries out the first committed step in monolignol biosynthesis and acts as a first regulatory point in lignin formation. CCR shows multiple substrate specificity towards various cinnamoyl CoA esters. Here, in Silico mutagenesis studies of active site residues of Ll-CCRH1 were carried out. Homology modeling based modeled 3D structure of Ll-CCRH1 was used as template for in Silico mutant preparations. Docking simulations of Ll-CCRH1 mutants with CoA esters by AutoDock Vina tools showed altered substrate specificity as compared to wild type. The study evidences that conformational changes, and change in geometry or architecture of active site pocket occurred following mutations. The altered substrate specificity for active site mutants suggests the possible physiological role of CCR either in lignin formation or in defense system in plants. ABBREVIATIONS: Ll-CCRH1 - Leucaena leucocephala cinnamoyl CoA reductase 1, OPLS - Optimized Potentials for Liquid Simulations, RMSD - Root Mean Square Deviation. Biomedical Informatics 2013-03-02 /pmc/articles/PMC3602876/ /pubmed/23515358 http://dx.doi.org/10.6026/97320630009224 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
Sonawane, Prashant
Patel, Krunal
Vishwakarma, Rishi Kishore
Singh, Somesh
Khan, Bashir Mohammad
in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title_full in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title_fullStr in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title_full_unstemmed in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title_short in Silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of Cinnamoyl CoA Reductase 1 (Ll-CCRH1)
title_sort in silico mutagenesis and docking studies of active site residues suggest altered substrate specificity and possible physiological role of cinnamoyl coa reductase 1 (ll-ccrh1)
topic Hypothesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3602876/
https://www.ncbi.nlm.nih.gov/pubmed/23515358
http://dx.doi.org/10.6026/97320630009224
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