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Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots

High Arsenic Concentration 1 (HAC1), an Arabidopsis thaliana arsenate reductase, plays a key role in arsenate [As(V)] tolerance. Through conversion of As(V) to arsenite [As(III)], HAC1 enables As(III) export from roots, and restricts translocation of As(V) to shoots. To probe the ability of differen...

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Autores principales: Fischer, Sina, Sánchez-Bermejo, Eduardo, Xu, Xuejie, Flis, Paulina, Ramakrishna, Priya, Guerinot, Mary Lou, Zhao, Fang-Jie, Salt, David E
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7853597/
https://www.ncbi.nlm.nih.gov/pubmed/33038235
http://dx.doi.org/10.1093/jxb/eraa465
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author Fischer, Sina
Sánchez-Bermejo, Eduardo
Xu, Xuejie
Flis, Paulina
Ramakrishna, Priya
Guerinot, Mary Lou
Zhao, Fang-Jie
Salt, David E
author_facet Fischer, Sina
Sánchez-Bermejo, Eduardo
Xu, Xuejie
Flis, Paulina
Ramakrishna, Priya
Guerinot, Mary Lou
Zhao, Fang-Jie
Salt, David E
author_sort Fischer, Sina
collection PubMed
description High Arsenic Concentration 1 (HAC1), an Arabidopsis thaliana arsenate reductase, plays a key role in arsenate [As(V)] tolerance. Through conversion of As(V) to arsenite [As(III)], HAC1 enables As(III) export from roots, and restricts translocation of As(V) to shoots. To probe the ability of different root tissues to detoxify As(III) produced by HAC1, we generated A. thaliana lines expressing HAC1 in different cell types. We investigated the As(V) tolerance phenotypes: root growth, As(III) efflux, As translocation, and As chemical speciation. We showed that HAC1 can function in the outer tissues of the root (epidermis, cortex, and endodermis) to confer As(V) tolerance, As(III) efflux, and limit As accumulation in shoots. HAC1 is less effective in the stele at conferring As(V) tolerance phenotypes. The exception is HAC1 activity in the protoxylem, which we found to be sufficient to restrict As translocation, but not to confer As(V) tolerance. In conclusion, we describe cell type-specific functions of HAC1 that spatially separate the control of As(V) tolerance and As translocation. Further, we identify a key function of protoxylem cells in As(V) translocation, consistent with the model where endodermal passage cells, above protoxylem pericycle cells, form a ‘funnel’ loading nutrients and potentially toxic elements into the vasculature.
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spelling pubmed-78535972021-02-04 Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots Fischer, Sina Sánchez-Bermejo, Eduardo Xu, Xuejie Flis, Paulina Ramakrishna, Priya Guerinot, Mary Lou Zhao, Fang-Jie Salt, David E J Exp Bot Research Paper High Arsenic Concentration 1 (HAC1), an Arabidopsis thaliana arsenate reductase, plays a key role in arsenate [As(V)] tolerance. Through conversion of As(V) to arsenite [As(III)], HAC1 enables As(III) export from roots, and restricts translocation of As(V) to shoots. To probe the ability of different root tissues to detoxify As(III) produced by HAC1, we generated A. thaliana lines expressing HAC1 in different cell types. We investigated the As(V) tolerance phenotypes: root growth, As(III) efflux, As translocation, and As chemical speciation. We showed that HAC1 can function in the outer tissues of the root (epidermis, cortex, and endodermis) to confer As(V) tolerance, As(III) efflux, and limit As accumulation in shoots. HAC1 is less effective in the stele at conferring As(V) tolerance phenotypes. The exception is HAC1 activity in the protoxylem, which we found to be sufficient to restrict As translocation, but not to confer As(V) tolerance. In conclusion, we describe cell type-specific functions of HAC1 that spatially separate the control of As(V) tolerance and As translocation. Further, we identify a key function of protoxylem cells in As(V) translocation, consistent with the model where endodermal passage cells, above protoxylem pericycle cells, form a ‘funnel’ loading nutrients and potentially toxic elements into the vasculature. Oxford University Press 2020-10-10 /pmc/articles/PMC7853597/ /pubmed/33038235 http://dx.doi.org/10.1093/jxb/eraa465 Text en © The Author(s) 2020. Published by Oxford University Press on behalf of the Society for Experimental Biology. http://creativecommons.org/licenses/by/4.0/ This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Fischer, Sina
Sánchez-Bermejo, Eduardo
Xu, Xuejie
Flis, Paulina
Ramakrishna, Priya
Guerinot, Mary Lou
Zhao, Fang-Jie
Salt, David E
Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title_full Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title_fullStr Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title_full_unstemmed Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title_short Targeted expression of the arsenate reductase HAC1 identifies cell type specificity of arsenic metabolism and transport in plant roots
title_sort targeted expression of the arsenate reductase hac1 identifies cell type specificity of arsenic metabolism and transport in plant roots
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7853597/
https://www.ncbi.nlm.nih.gov/pubmed/33038235
http://dx.doi.org/10.1093/jxb/eraa465
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