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The Arabidopsis RING-Type E3 Ligase TEAR1 Controls Leaf Development by Targeting the TIE1 Transcriptional Repressor for Degradation

机译:拟南芥RING型E3连接酶TEAR1通过靶向降解的TIE1转录阻遏物控制叶片发育。

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摘要

The developmental plasticity of leaf size and shape is important for leaf function and plant survival. However, the mechanisms by which plants form diverse leaves in response to environmental conditions are not well understood. Here, we identified TIE1-ASSOCIATED RING-TYPE E3 LIGASE1 (TEAR1) and found that it regulates leaf development by promoting the degradation of TCP INTERACTOR-CONTAINING EAR MOTIF PROTEIN1 (TIE1), an important repressor of CINCINNATA (CIN)-like TEOSINTE BRANCHED1/CYCLOIDEA/PCF (TCP) transcription factors, which are key for leaf development. TEAR1 contains a typical C3H2C3-type RING domain and has E3 ligase activity. We show that TEAR1 interacts with the TCP repressor TIE1, which is ubiquitinated in vivo and degraded by the 26S proteasome system. We demonstrate that TEAR1 is colocalized with TIE1 in nuclei and negatively regulates TIE1 protein levels. Overexpression of TEAR1 rescued leaf defects caused by TIE1 overexpression, whereas disruption of TEAR1 resulted in leaf phenotypes resembling those caused by TIE1 overexpression or TCP dysfunction. Deficiency in TEAR partially rescued the leaf defects of TCP4 overexpression line and enhanced the wavy leaf phenotypes of jaw-5D. We propose that TEAR1 positively regulates CIN-like TCP activity to promote leaf development by mediating the degradation of the TCP repressor TIE1.
机译:叶片大小和形状的发育可塑性对于叶片功能和植物存活很重要。但是,人们对植物响应环境条件形成不同叶片的机理尚未完全了解。在这里,我们确定了TIE1关联的环E3型连接酶1(TEAR1),并发现它通过促进含TCP INTERACTOR的EAR MOTIF蛋白1(TIE1)的降解来调节叶片发育,这是像CINCINNATA(CIN)一样重要的TEOSINTE BRANCHED1的重要阻遏物。 / CYCLOIDEA / PCF(TCP)转录因子,是叶片发育的关键。 TEAR1包含一个典型的C3H2C3型RING域,并具有E3连接酶活性。我们显示,TEAR1与TCP阻遏物TIE1相互作用,后者在体内被泛素化并被26S蛋白酶体系统降解。我们证明,TEAR1与TIE1在细胞核中共定位,并负面调节TIE1蛋白水平。 TEAR1的过表达挽救了由TIE1的过表达引起的叶片缺陷,而TEAR1的破坏导致叶片的表型类似于TIE1的过表达或TCP功能障碍引起的表型。 TEAR的缺乏部分挽救了TCP4过表达品系的叶片缺陷,并增强了颚5D的波浪叶片表型。我们建议,TEAR1通过调节TCP阻遏物TIE1的降解来积极调节CIN样TCP活性,从而促进叶片发育。

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