Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution

Phytoremediation refers to the use of plants for extraction and detoxification of pollutants, providing a new and powerful weapon against a polluted environment. In some plants, such as Thlaspi spp, heavy metal ATPases are involved in overall metal ion homeostasis and hyperaccumulation. P1B-ATPases...

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Main Authors: E. Ashrafi, A. Alemzadeh, M. Ebrahimi, E. Ebrahimie, N. Dadkhodaei
Format: Article
Language:English
Published: SAGE Publishing 2011-01-01
Series:Bioinformatics and Biology Insights
Online Access:https://doi.org/10.4137/BBI.S6206
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spelling doaj-db4888d0fb5d464bb0fc9243c6ac6bb72020-11-25T03:40:30ZengSAGE PublishingBioinformatics and Biology Insights1177-93222011-01-01510.4137/BBI.S6206Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal PollutionE. Ashrafi0A. Alemzadeh1M. Ebrahimi2E. Ebrahimie3N. Dadkhodaei4M. Ebrahimi5Department of crop Production and Plant Breeding, college of Agriculture, Shiraz University, Shiraz, Iran.Department of crop Production and Plant Breeding, college of Agriculture, Shiraz University, Shiraz, Iran.Bioinformatics Research Group, Green Research center, Qom University, Qom, Iran.Department of crop Production and Plant Breeding, college of Agriculture, Shiraz University, Shiraz, Iran.Department of crop Production and Plant Breeding, college of Agriculture, Shiraz University, Shiraz, Iran.Department of Informatics, Saarland University, Saarbrucken, Germany.Phytoremediation refers to the use of plants for extraction and detoxification of pollutants, providing a new and powerful weapon against a polluted environment. In some plants, such as Thlaspi spp, heavy metal ATPases are involved in overall metal ion homeostasis and hyperaccumulation. P1B-ATPases pump a wide range of cations, especially heavy metals, across membranes against their electrochemical gradients. Determination of the protein characteristics of P1B-ATPases in hyperaccumulator plants provides a new opportuntity for engineering of phytoremediating plants. In this study, using diverse weighting and modeling approaches, 2644 protein characteristics of primary, secondary, and tertiary structures of P1B-ATPases in hyperaccumulator and nonhyperaccumulator plants were extracted and compared to identify differences between proteins in hyperaccumulator and nonhyperaccumulator pumps. Although the protein characteristics were variable in their weighting, tree and rule induction models; glycine count, frequency of glutamine-valine, and valine-phenylalanine count were the most important attributes highlighted by 10, five, and four models, respectively. In addition, a precise model was built to discriminate P1B-ATPases in different organisms based on their structural protein features. Moreover, reliable models for prediction of the hyperaccumulating activity of unknown P1B-ATPase pumps were developed. Uncovering important structural features of hyperaccumulator pumps in this study has provided the knowledge required for future modification and engineering of these pumps by techniques such as site-directed mutagenesis.https://doi.org/10.4137/BBI.S6206
collection DOAJ
language English
format Article
sources DOAJ
author E. Ashrafi
A. Alemzadeh
M. Ebrahimi
E. Ebrahimie
N. Dadkhodaei
M. Ebrahimi
spellingShingle E. Ashrafi
A. Alemzadeh
M. Ebrahimi
E. Ebrahimie
N. Dadkhodaei
M. Ebrahimi
Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
Bioinformatics and Biology Insights
author_facet E. Ashrafi
A. Alemzadeh
M. Ebrahimi
E. Ebrahimie
N. Dadkhodaei
M. Ebrahimi
author_sort E. Ashrafi
title Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
title_short Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
title_full Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
title_fullStr Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
title_full_unstemmed Amino Acid Features of PIB-ATPase Heavy Metal Transporters Enabling small Numbers of Organisms to Cope with Heavy Metal Pollution
title_sort amino acid features of pib-atpase heavy metal transporters enabling small numbers of organisms to cope with heavy metal pollution
publisher SAGE Publishing
series Bioinformatics and Biology Insights
issn 1177-9322
publishDate 2011-01-01
description Phytoremediation refers to the use of plants for extraction and detoxification of pollutants, providing a new and powerful weapon against a polluted environment. In some plants, such as Thlaspi spp, heavy metal ATPases are involved in overall metal ion homeostasis and hyperaccumulation. P1B-ATPases pump a wide range of cations, especially heavy metals, across membranes against their electrochemical gradients. Determination of the protein characteristics of P1B-ATPases in hyperaccumulator plants provides a new opportuntity for engineering of phytoremediating plants. In this study, using diverse weighting and modeling approaches, 2644 protein characteristics of primary, secondary, and tertiary structures of P1B-ATPases in hyperaccumulator and nonhyperaccumulator plants were extracted and compared to identify differences between proteins in hyperaccumulator and nonhyperaccumulator pumps. Although the protein characteristics were variable in their weighting, tree and rule induction models; glycine count, frequency of glutamine-valine, and valine-phenylalanine count were the most important attributes highlighted by 10, five, and four models, respectively. In addition, a precise model was built to discriminate P1B-ATPases in different organisms based on their structural protein features. Moreover, reliable models for prediction of the hyperaccumulating activity of unknown P1B-ATPase pumps were developed. Uncovering important structural features of hyperaccumulator pumps in this study has provided the knowledge required for future modification and engineering of these pumps by techniques such as site-directed mutagenesis.
url https://doi.org/10.4137/BBI.S6206
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