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Structural and functional characterization of HMG-COA reductase from Artemisia annua

Plants synthesize a great variety of isoprenoid products that are required not only for normal growth and development but also for their adaptive responses to environmental challenges. However, despite the remarkable diversity in the structure and function of plant isoprenoids, they all originate fr...

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Autores principales: Kiran, Usha, Ram, Mauji, Khan, Mather Ali, Khan, Salim, Jha, Prabhakar, Alam, Afshar, Abdin, Malik Zainul
Formato: Texto
Lenguaje:English
Publicado: Biomedical Informatics 2010
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3040474/
https://www.ncbi.nlm.nih.gov/pubmed/21364776
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author Kiran, Usha
Ram, Mauji
Khan, Mather Ali
Khan, Salim
Jha, Prabhakar
Alam, Afshar
Abdin, Malik Zainul
author_facet Kiran, Usha
Ram, Mauji
Khan, Mather Ali
Khan, Salim
Jha, Prabhakar
Alam, Afshar
Abdin, Malik Zainul
author_sort Kiran, Usha
collection PubMed
description Plants synthesize a great variety of isoprenoid products that are required not only for normal growth and development but also for their adaptive responses to environmental challenges. However, despite the remarkable diversity in the structure and function of plant isoprenoids, they all originate from a single metabolic precursor, mevalonic acid. The synthesis of mevalonic acid is catalysed by the enzyme, 3‐hydroxy‐3‐methylglutaryl coenzyme A reductase (HMG‐ CoA reductase). The analysis of the amino acid sequence of HMG‐CoA reductase from Artemisia annua L. plant showed that it belongs to class I HMG‐CoA reductase family. The three dimensional structure of HMG‐CoA reductase of Artemisia annua has been generated from amino acid sequence using homology modelling with backbone structure of human HMG‐CoA reductase as template. The model was generated using the SWISS MODEL SERVER. The generated 3‐D structure of HMG‐CoA reductase was evaluated at various web interfaced servers to checks the stereo interfaced quality of the structure in terms of bonds, bond angles, dihedral angles and non-bonded atom-atom distances, structural as well as functional domains etc. The generated model was visualized using the RASMOL. Structural analysis of HMG-CoA reductase from Artemisia annua L. plant hypothesize that the N and C‐terminals are positioned in cytosol by the two membrane spanning helices and the C-terminals domain shows similarity to the human HMG‐CoA reductase enzyme indicating that they both had potential catalytic similarities.
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spelling pubmed-30404742011-03-01 Structural and functional characterization of HMG-COA reductase from Artemisia annua Kiran, Usha Ram, Mauji Khan, Mather Ali Khan, Salim Jha, Prabhakar Alam, Afshar Abdin, Malik Zainul Bioinformation Hypothesis Plants synthesize a great variety of isoprenoid products that are required not only for normal growth and development but also for their adaptive responses to environmental challenges. However, despite the remarkable diversity in the structure and function of plant isoprenoids, they all originate from a single metabolic precursor, mevalonic acid. The synthesis of mevalonic acid is catalysed by the enzyme, 3‐hydroxy‐3‐methylglutaryl coenzyme A reductase (HMG‐ CoA reductase). The analysis of the amino acid sequence of HMG‐CoA reductase from Artemisia annua L. plant showed that it belongs to class I HMG‐CoA reductase family. The three dimensional structure of HMG‐CoA reductase of Artemisia annua has been generated from amino acid sequence using homology modelling with backbone structure of human HMG‐CoA reductase as template. The model was generated using the SWISS MODEL SERVER. The generated 3‐D structure of HMG‐CoA reductase was evaluated at various web interfaced servers to checks the stereo interfaced quality of the structure in terms of bonds, bond angles, dihedral angles and non-bonded atom-atom distances, structural as well as functional domains etc. The generated model was visualized using the RASMOL. Structural analysis of HMG-CoA reductase from Artemisia annua L. plant hypothesize that the N and C‐terminals are positioned in cytosol by the two membrane spanning helices and the C-terminals domain shows similarity to the human HMG‐CoA reductase enzyme indicating that they both had potential catalytic similarities. Biomedical Informatics 2010-09-20 /pmc/articles/PMC3040474/ /pubmed/21364776 Text en © 2010 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
Kiran, Usha
Ram, Mauji
Khan, Mather Ali
Khan, Salim
Jha, Prabhakar
Alam, Afshar
Abdin, Malik Zainul
Structural and functional characterization of HMG-COA reductase from Artemisia annua
title Structural and functional characterization of HMG-COA reductase from Artemisia annua
title_full Structural and functional characterization of HMG-COA reductase from Artemisia annua
title_fullStr Structural and functional characterization of HMG-COA reductase from Artemisia annua
title_full_unstemmed Structural and functional characterization of HMG-COA reductase from Artemisia annua
title_short Structural and functional characterization of HMG-COA reductase from Artemisia annua
title_sort structural and functional characterization of hmg-coa reductase from artemisia annua
topic Hypothesis
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3040474/
https://www.ncbi.nlm.nih.gov/pubmed/21364776
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