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Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L.
With the escalating prevalence of malaria in recent years, artemisinin demand has placed considerable stress on its production worldwide. At present, the relative lowyield of artemisinin (0.011.1 %) in the source plant (Artemisia annua L. plant) has imposed a serious limitation in commercializing...
Autores principales: | , , , , , , |
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Formato: | Texto |
Lenguaje: | English |
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Biomedical Informatics Publishing Group
2010
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951637/ https://www.ncbi.nlm.nih.gov/pubmed/20975893 |
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author | Alam, Pravej Kiran, Usha Ahmad, M Mobeen Kamaluddin, Khan, Mather Ali Jhanwar, Shalu Abdin, MZ |
author_facet | Alam, Pravej Kiran, Usha Ahmad, M Mobeen Kamaluddin, Khan, Mather Ali Jhanwar, Shalu Abdin, MZ |
author_sort | Alam, Pravej |
collection | PubMed |
description | With the escalating prevalence of malaria in recent years, artemisinin demand has placed considerable stress on its production worldwide. At present, the relative lowyield of artemisinin (0.011.1 %) in the source plant (Artemisia annua L. plant) has imposed a serious limitation in commercializing the drug. Amorpha4, 11diene synthase (ADS) has been reported a key enzyme in enhancing the artemisinin level in Artemisia annua L. An understanding of the structural and functional correlations of Amorpha4, 11diene synthase (ADS) may therefore, help in the molecular upregulation of the enzyme. In this context, an in silico approach was used to study the ADS(3963) (3963 bp) gene cloned by us, from high artemisinin (0.70.9% dry wt basis) yielding strain of A. annua L. The fulllength putative gene of ADS(3963) was found to encode a protein consisting of 533 amino acid residues with conserved aspartate rich domain. The isoelectric point (pI) and molecular weight of the protein were 5.25 and 62.2 kDa, respectively. The phylogenetic analysis of ADS genes from various species revealed evolutionary conservation. Homology modeling method was used for prediction of the 3D structure of ADS3963 protein and Autodock 4.0 version was used to study the ligand binding. The predicted 3D model and docking studies may further be used in characterizing the protein in wet laboratory. |
format | Text |
id | pubmed-2951637 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2010 |
publisher | Biomedical Informatics Publishing Group |
record_format | MEDLINE/PubMed |
spelling | pubmed-29516372010-10-25 Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. Alam, Pravej Kiran, Usha Ahmad, M Mobeen Kamaluddin, Khan, Mather Ali Jhanwar, Shalu Abdin, MZ Bioinformation Hypothesis With the escalating prevalence of malaria in recent years, artemisinin demand has placed considerable stress on its production worldwide. At present, the relative lowyield of artemisinin (0.011.1 %) in the source plant (Artemisia annua L. plant) has imposed a serious limitation in commercializing the drug. Amorpha4, 11diene synthase (ADS) has been reported a key enzyme in enhancing the artemisinin level in Artemisia annua L. An understanding of the structural and functional correlations of Amorpha4, 11diene synthase (ADS) may therefore, help in the molecular upregulation of the enzyme. In this context, an in silico approach was used to study the ADS(3963) (3963 bp) gene cloned by us, from high artemisinin (0.70.9% dry wt basis) yielding strain of A. annua L. The fulllength putative gene of ADS(3963) was found to encode a protein consisting of 533 amino acid residues with conserved aspartate rich domain. The isoelectric point (pI) and molecular weight of the protein were 5.25 and 62.2 kDa, respectively. The phylogenetic analysis of ADS genes from various species revealed evolutionary conservation. Homology modeling method was used for prediction of the 3D structure of ADS3963 protein and Autodock 4.0 version was used to study the ligand binding. The predicted 3D model and docking studies may further be used in characterizing the protein in wet laboratory. Biomedical Informatics Publishing Group 2010-03-31 /pmc/articles/PMC2951637/ /pubmed/20975893 Text en © 2010 Biomedical Informatics Publishing Group 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 Alam, Pravej Kiran, Usha Ahmad, M Mobeen Kamaluddin, Khan, Mather Ali Jhanwar, Shalu Abdin, MZ Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title | Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title_full | Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title_fullStr | Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title_full_unstemmed | Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title_short | Isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ADS(3963)) from Artemisia annua L. |
title_sort | isolation, characterization and structural studies of amorpha ― 4, 11diene synthase (ads(3963)) from artemisia annua l. |
topic | Hypothesis |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2951637/ https://www.ncbi.nlm.nih.gov/pubmed/20975893 |
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