Cargando…

A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation

The induction and secretion of acid phosphatases (APases) is a universal response of plants to phosphate (Pi) starvation. AtPAP10 (Arabidopsis purple acid phosphatase 10) is a major Pi starvation-induced APase that is associated with the root surface in Arabidopsis. So far, the roles of local and sy...

Descripción completa

Detalles Bibliográficos
Autores principales: Zhang, Ye, Wang, Xiaoyue, Lu, Shan, Liu, Dong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Oxford University Press 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4246188/
https://www.ncbi.nlm.nih.gov/pubmed/25246445
http://dx.doi.org/10.1093/jxb/eru377
_version_ 1782346486357426176
author Zhang, Ye
Wang, Xiaoyue
Lu, Shan
Liu, Dong
author_facet Zhang, Ye
Wang, Xiaoyue
Lu, Shan
Liu, Dong
author_sort Zhang, Ye
collection PubMed
description The induction and secretion of acid phosphatases (APases) is a universal response of plants to phosphate (Pi) starvation. AtPAP10 (Arabidopsis purple acid phosphatase 10) is a major Pi starvation-induced APase that is associated with the root surface in Arabidopsis. So far, the roles of local and systemic signalling in regulating root-associated AtPAP10 activity remain largely unknown. In this work, we show that a decrease of local, external Pi availability is sufficient to induce AtPAP10 transcription in roots in the presence of sucrose, a systemic signal from shoots, whereas the magnitude of the induction is affected by the Pi status of the whole plant. Once the AtPAP10 mRNAs are synthesized in roots, subsequent accumulation of AtPAP10 proteins in root cells and increase in AtPAP10 activity on the root surface are mainly controlled by local signalling. Previously, ethylene has been demonstrated to be a positive regulator of AtPAP10 activity. In this study, we provide evidence that under Pi deficiency ethylene mainly modulates enzymatic activity of AtPAP10 on the root surface, but not AtPAP10 transcription and protein accumulation, suggesting that it functions as a local signal. Furthermore, our work indicates that the effect of ethylene on the induction of root-associated AtPAP10 activity depends on sucrose, but that the effect of sucrose does not depend on ethylene. These results reveal new insights into the distinct roles of local and systemic signalling in the regulation of root-associated AtPAP10 activity under Pi starvation.
format Online
Article
Text
id pubmed-4246188
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Oxford University Press
record_format MEDLINE/PubMed
spelling pubmed-42461882014-12-04 A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation Zhang, Ye Wang, Xiaoyue Lu, Shan Liu, Dong J Exp Bot Research Paper The induction and secretion of acid phosphatases (APases) is a universal response of plants to phosphate (Pi) starvation. AtPAP10 (Arabidopsis purple acid phosphatase 10) is a major Pi starvation-induced APase that is associated with the root surface in Arabidopsis. So far, the roles of local and systemic signalling in regulating root-associated AtPAP10 activity remain largely unknown. In this work, we show that a decrease of local, external Pi availability is sufficient to induce AtPAP10 transcription in roots in the presence of sucrose, a systemic signal from shoots, whereas the magnitude of the induction is affected by the Pi status of the whole plant. Once the AtPAP10 mRNAs are synthesized in roots, subsequent accumulation of AtPAP10 proteins in root cells and increase in AtPAP10 activity on the root surface are mainly controlled by local signalling. Previously, ethylene has been demonstrated to be a positive regulator of AtPAP10 activity. In this study, we provide evidence that under Pi deficiency ethylene mainly modulates enzymatic activity of AtPAP10 on the root surface, but not AtPAP10 transcription and protein accumulation, suggesting that it functions as a local signal. Furthermore, our work indicates that the effect of ethylene on the induction of root-associated AtPAP10 activity depends on sucrose, but that the effect of sucrose does not depend on ethylene. These results reveal new insights into the distinct roles of local and systemic signalling in the regulation of root-associated AtPAP10 activity under Pi starvation. Oxford University Press 2014-12 2014-09-20 /pmc/articles/PMC4246188/ /pubmed/25246445 http://dx.doi.org/10.1093/jxb/eru377 Text en © The Author 2014. Published by Oxford University Press on behalf of the Society for Experimental Biology. http://creativecommons.org/licenses/by/3.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted reuse, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Paper
Zhang, Ye
Wang, Xiaoyue
Lu, Shan
Liu, Dong
A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title_full A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title_fullStr A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title_full_unstemmed A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title_short A major root-associated acid phosphatase in Arabidopsis, AtPAP10, is regulated by both local and systemic signals under phosphate starvation
title_sort major root-associated acid phosphatase in arabidopsis, atpap10, is regulated by both local and systemic signals under phosphate starvation
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4246188/
https://www.ncbi.nlm.nih.gov/pubmed/25246445
http://dx.doi.org/10.1093/jxb/eru377
work_keys_str_mv AT zhangye amajorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT wangxiaoyue amajorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT lushan amajorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT liudong amajorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT zhangye majorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT wangxiaoyue majorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT lushan majorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation
AT liudong majorrootassociatedacidphosphataseinarabidopsisatpap10isregulatedbybothlocalandsystemicsignalsunderphosphatestarvation