NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis

博士 === 國立中興大學 === 生物科技學研究所 === 102 === Members of the Arabidopsis PHOSPHATE TRANSPORTER 1 (PHT1) family are key players in acquisition of phosphate (Pi) from the rhizosphere, and their regulation is indispensable for the maintenance of cellular Pi homeostasis. In this study, we revealed regulation o...

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Main Authors: Wei-Yi Lin, 林維怡
Other Authors: Tzyy-Jen Chiou
Format: Others
Language:en_US
Published: 2013
Online Access:http://ndltd.ncl.edu.tw/handle/71909973662141648621
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spelling ndltd-TW-102NCHU51110042017-02-04T04:13:20Z http://ndltd.ncl.edu.tw/handle/71909973662141648621 NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis 阿拉伯芥微型核糖核酸827目標基因,NLA,調控磷酸運輸蛋白之降解以維持植物體內磷酸的恆定 Wei-Yi Lin 林維怡 博士 國立中興大學 生物科技學研究所 102 Members of the Arabidopsis PHOSPHATE TRANSPORTER 1 (PHT1) family are key players in acquisition of phosphate (Pi) from the rhizosphere, and their regulation is indispensable for the maintenance of cellular Pi homeostasis. In this study, we revealed regulation of Pi transport, through post-translational modulation and degradation of PHT1 proteins by the RING-type ubiquitin E3 ligase, NITROGEN LIMITATION ADAPTATION (NLA). Loss-of-function of NLA caused high Pi accumulation resulting from increases in the levels of several PHT1s at the protein rather than the transcript level. Evidence of decreased endocytosis and ubiquitination of PHT1s in nla mutants and interaction between NLA and PHT1s in the plasma membranes suggests that NLA directs the ubiquitination of plasma membrane-localized PHT1s which triggers clathrin-dependent endocytosis followed by endosomal sorting to vacuoles. Further, different subcellular localization of NLA and PHO2 and synergistic effect of the accumulation of PHT1s and Pi in nla pho2 mutants suggest that they function independently but cooperatively to control PHT1 protein amounts. Intriguingly, NLA and PHO2 are the targets of two Pi starvation-induced microRNAs, miR827 and miR399, respectively. Our findings, therefore, uncover modulation of Pi transport activity in response to Pi availability through the integration of miRNA-mediated post-transcriptional and ubiquitin-mediated post-translational regulation. Tzyy-Jen Chiou 邱子珍 2013 學位論文 ; thesis 80 en_US
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description 博士 === 國立中興大學 === 生物科技學研究所 === 102 === Members of the Arabidopsis PHOSPHATE TRANSPORTER 1 (PHT1) family are key players in acquisition of phosphate (Pi) from the rhizosphere, and their regulation is indispensable for the maintenance of cellular Pi homeostasis. In this study, we revealed regulation of Pi transport, through post-translational modulation and degradation of PHT1 proteins by the RING-type ubiquitin E3 ligase, NITROGEN LIMITATION ADAPTATION (NLA). Loss-of-function of NLA caused high Pi accumulation resulting from increases in the levels of several PHT1s at the protein rather than the transcript level. Evidence of decreased endocytosis and ubiquitination of PHT1s in nla mutants and interaction between NLA and PHT1s in the plasma membranes suggests that NLA directs the ubiquitination of plasma membrane-localized PHT1s which triggers clathrin-dependent endocytosis followed by endosomal sorting to vacuoles. Further, different subcellular localization of NLA and PHO2 and synergistic effect of the accumulation of PHT1s and Pi in nla pho2 mutants suggest that they function independently but cooperatively to control PHT1 protein amounts. Intriguingly, NLA and PHO2 are the targets of two Pi starvation-induced microRNAs, miR827 and miR399, respectively. Our findings, therefore, uncover modulation of Pi transport activity in response to Pi availability through the integration of miRNA-mediated post-transcriptional and ubiquitin-mediated post-translational regulation.
author2 Tzyy-Jen Chiou
author_facet Tzyy-Jen Chiou
Wei-Yi Lin
林維怡
author Wei-Yi Lin
林維怡
spellingShingle Wei-Yi Lin
林維怡
NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
author_sort Wei-Yi Lin
title NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
title_short NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
title_full NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
title_fullStr NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
title_full_unstemmed NITROGEN LIMITATION ADAPTATION, a Target of microRNA827, Mediates Degradation of Phosphate Transporters to Maintain Phosphate Homeostasis in Arabidopsis
title_sort nitrogen limitation adaptation, a target of microrna827, mediates degradation of phosphate transporters to maintain phosphate homeostasis in arabidopsis
publishDate 2013
url http://ndltd.ncl.edu.tw/handle/71909973662141648621
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