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Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)

In cereals, ADP-glucose transporter protein plays an important role in starch biosynthesis. It acts as a main gate for the transport of ADP-glucose, the main precursor for starch biosynthesis during grain filling, from the cytosol into the amyloplasts of endospermic cells. In this study, we have she...

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Autores principales: Soliman, Atta, Ayele, Belay T., Daayf, Fouad
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4043945/
https://www.ncbi.nlm.nih.gov/pubmed/24892865
http://dx.doi.org/10.1371/journal.pone.0098524
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author Soliman, Atta
Ayele, Belay T.
Daayf, Fouad
author_facet Soliman, Atta
Ayele, Belay T.
Daayf, Fouad
author_sort Soliman, Atta
collection PubMed
description In cereals, ADP-glucose transporter protein plays an important role in starch biosynthesis. It acts as a main gate for the transport of ADP-glucose, the main precursor for starch biosynthesis during grain filling, from the cytosol into the amyloplasts of endospermic cells. In this study, we have shed some light on the molecular and biochemical characteristics of barley plastidial ADP-glucose transporter, HvBT1. Phylogenetic analysis of several BT1 homologues revealed that BT1 homologues are divided into two distinct groups. The HvBT1 is assigned to the group that represents BT homologues from monocotyledonous species. Some members of this group mainly work as nucleotide sugar transporters. Southern blot analysis showed the presence of a single copy of HvBT1 in barley genome. Gene expression analysis indicated that HvBT1 is mainly expressed in endospermic cells during grain filling; however, low level of its expression was detected in the autotrophic tissues, suggesting the possible role of HvBT1 in autotrophic tissues. The cellular and subcellular localization of HvBT1 provided additional evidence that HvBT1 targets the amyloplast membrane of the endospermic cells. Biochemical characterization of HvBT1 using E. coli system revealed that HvBT1 is able to transport ADP-glucose into E. coli cells with an affinity of 614.5 µM and in counter exchange of ADP with an affinity of 334.7 µM. The study also showed that AMP is another possible exchange substrate. The effect of non-labeled ADP-glucose and ADP on the uptake rate of [α-(32)P] ADP-glucose indicated the substrate specificity of HvBT1 for ADP-glucose and ADP.
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spelling pubmed-40439452014-06-09 Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1) Soliman, Atta Ayele, Belay T. Daayf, Fouad PLoS One Research Article In cereals, ADP-glucose transporter protein plays an important role in starch biosynthesis. It acts as a main gate for the transport of ADP-glucose, the main precursor for starch biosynthesis during grain filling, from the cytosol into the amyloplasts of endospermic cells. In this study, we have shed some light on the molecular and biochemical characteristics of barley plastidial ADP-glucose transporter, HvBT1. Phylogenetic analysis of several BT1 homologues revealed that BT1 homologues are divided into two distinct groups. The HvBT1 is assigned to the group that represents BT homologues from monocotyledonous species. Some members of this group mainly work as nucleotide sugar transporters. Southern blot analysis showed the presence of a single copy of HvBT1 in barley genome. Gene expression analysis indicated that HvBT1 is mainly expressed in endospermic cells during grain filling; however, low level of its expression was detected in the autotrophic tissues, suggesting the possible role of HvBT1 in autotrophic tissues. The cellular and subcellular localization of HvBT1 provided additional evidence that HvBT1 targets the amyloplast membrane of the endospermic cells. Biochemical characterization of HvBT1 using E. coli system revealed that HvBT1 is able to transport ADP-glucose into E. coli cells with an affinity of 614.5 µM and in counter exchange of ADP with an affinity of 334.7 µM. The study also showed that AMP is another possible exchange substrate. The effect of non-labeled ADP-glucose and ADP on the uptake rate of [α-(32)P] ADP-glucose indicated the substrate specificity of HvBT1 for ADP-glucose and ADP. Public Library of Science 2014-06-03 /pmc/articles/PMC4043945/ /pubmed/24892865 http://dx.doi.org/10.1371/journal.pone.0098524 Text en © 2014 Soliman et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Soliman, Atta
Ayele, Belay T.
Daayf, Fouad
Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title_full Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title_fullStr Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title_full_unstemmed Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title_short Biochemical and Molecular Characterization of Barley Plastidial ADP-Glucose Transporter (HvBT1)
title_sort biochemical and molecular characterization of barley plastidial adp-glucose transporter (hvbt1)
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4043945/
https://www.ncbi.nlm.nih.gov/pubmed/24892865
http://dx.doi.org/10.1371/journal.pone.0098524
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