NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.

MOB1 protein is a core component of the Hippo signaling pathway in animals where it is involved in controlling tissue growth and tumor suppression. Plant MOB1 proteins display high sequence homology to animal MOB1 proteins, but little is known regarding their role in plant growth and development. He...

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Main Authors: Xiaona Cui, Zhiai Guo, Lizhen Song, Yanli Wang, Youfa Cheng
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2016-03-01
Series:PLoS Genetics
Online Access:http://europepmc.org/articles/PMC4778850?pdf=render
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spelling doaj-d3b189e348254641b0bd6c4c918a5f542020-11-25T00:53:56ZengPublic Library of Science (PLoS)PLoS Genetics1553-73901553-74042016-03-01123e100592310.1371/journal.pgen.1005923NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.Xiaona CuiZhiai GuoLizhen SongYanli WangYoufa ChengMOB1 protein is a core component of the Hippo signaling pathway in animals where it is involved in controlling tissue growth and tumor suppression. Plant MOB1 proteins display high sequence homology to animal MOB1 proteins, but little is known regarding their role in plant growth and development. Herein we report the critical roles of Arabidopsis MOB1 (AtMOB1A) in auxin-mediated development in Arabidopsis. We found that loss-of-function mutations in AtMOB1A completely eliminated the formation of cotyledons when combined with mutations in PINOID (PID), which encodes a Ser/Thr protein kinase that participates in auxin signaling and transport. We showed that atmob1a was fully rescued by its Drosophila counterpart, suggesting functional conservation. The atmob1a pid double mutants phenocopied several well-characterized mutant combinations that are defective in auxin biosynthesis or transport. Moreover, we demonstrated that atmob1a greatly enhanced several other known auxin mutants, suggesting that AtMOB1A plays a key role in auxin-mediated plant development. The atmob1a single mutant displayed defects in early embryogenesis and had shorter root and smaller flowers than wild type plants. AtMOB1A is uniformly expressed in embryos and suspensor cells during embryogenesis, consistent with its role in embryo development. AtMOB1A protein is localized to nucleus, cytoplasm, and associated to plasma membrane, suggesting that it plays roles in these subcellular localizations. Furthermore, we showed that disruption of AtMOB1A led to a reduced sensitivity to exogenous auxin. Our results demonstrated that AtMOB1A plays an important role in Arabidopsis development by promoting auxin signaling.http://europepmc.org/articles/PMC4778850?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Xiaona Cui
Zhiai Guo
Lizhen Song
Yanli Wang
Youfa Cheng
spellingShingle Xiaona Cui
Zhiai Guo
Lizhen Song
Yanli Wang
Youfa Cheng
NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
PLoS Genetics
author_facet Xiaona Cui
Zhiai Guo
Lizhen Song
Yanli Wang
Youfa Cheng
author_sort Xiaona Cui
title NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
title_short NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
title_full NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
title_fullStr NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
title_full_unstemmed NCP1/AtMOB1A Plays Key Roles in Auxin-Mediated Arabidopsis Development.
title_sort ncp1/atmob1a plays key roles in auxin-mediated arabidopsis development.
publisher Public Library of Science (PLoS)
series PLoS Genetics
issn 1553-7390
1553-7404
publishDate 2016-03-01
description MOB1 protein is a core component of the Hippo signaling pathway in animals where it is involved in controlling tissue growth and tumor suppression. Plant MOB1 proteins display high sequence homology to animal MOB1 proteins, but little is known regarding their role in plant growth and development. Herein we report the critical roles of Arabidopsis MOB1 (AtMOB1A) in auxin-mediated development in Arabidopsis. We found that loss-of-function mutations in AtMOB1A completely eliminated the formation of cotyledons when combined with mutations in PINOID (PID), which encodes a Ser/Thr protein kinase that participates in auxin signaling and transport. We showed that atmob1a was fully rescued by its Drosophila counterpart, suggesting functional conservation. The atmob1a pid double mutants phenocopied several well-characterized mutant combinations that are defective in auxin biosynthesis or transport. Moreover, we demonstrated that atmob1a greatly enhanced several other known auxin mutants, suggesting that AtMOB1A plays a key role in auxin-mediated plant development. The atmob1a single mutant displayed defects in early embryogenesis and had shorter root and smaller flowers than wild type plants. AtMOB1A is uniformly expressed in embryos and suspensor cells during embryogenesis, consistent with its role in embryo development. AtMOB1A protein is localized to nucleus, cytoplasm, and associated to plasma membrane, suggesting that it plays roles in these subcellular localizations. Furthermore, we showed that disruption of AtMOB1A led to a reduced sensitivity to exogenous auxin. Our results demonstrated that AtMOB1A plays an important role in Arabidopsis development by promoting auxin signaling.
url http://europepmc.org/articles/PMC4778850?pdf=render
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