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RhoGDI: A rheostat for the Rho switch.Rho鸟苷酸解离抑制剂:Rho开关的变阻器
Small GTPases. 2010 Jul;1(1):65-68. doi: 10.4161/sgtp.1.1.12990.
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Differentiating Arabidopsis shoots from leaves by combined YABBY activities.通过 YABBY 基因的组合活性区分拟南芥的茎和叶。
Plant Cell. 2010 Jul;22(7):2113-30. doi: 10.1105/tpc.110.075853. Epub 2010 Jul 13.
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An S-acylation switch of conserved G domain cysteines is required for polarity signaling by ROP GTPases.保守的 G 结构域半胱氨酸的 S-酰化转换对于 ROP GTPases 的极性信号转导是必需的。
Curr Biol. 2010 May 25;20(10):914-20. doi: 10.1016/j.cub.2010.03.057. Epub 2010 May 6.
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Morphogenesis of simple and compound leaves: a critical review.简单叶和复叶的形态发生:批判性综述。
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Regulation of Rho GTPase crosstalk, degradation and activity by RhoGDI1.RhoGDI1 对 Rho GTPase 串扰、降解和活性的调节。
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Analysis of protein S-acylation by gas chromatography-coupled mass spectrometry using purified proteins.采用经纯化蛋白的气相色谱-质谱联用分析法分析蛋白质的 S-酰化。
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A rho scaffold integrates the secretory system with feedback mechanisms in regulation of auxin distribution.rho 支架将分泌系统与反馈机制整合在一起,以调节生长素的分布。
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Genevestigator v3: a reference expression database for the meta-analysis of transcriptomes.Genevestigator v3:一个用于转录组元分析的参考表达数据库。
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Protein lipid modifications in signaling and subcellular targeting.蛋白质脂质修饰在信号转导和亚细胞靶向中的作用。
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Protein isoprenylation: the fat of the matter.蛋白质异戊二烯化:问题的关键所在。
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异戊二烯化和S-酰化对I型和II型ROP膜相互作用及功能的不同影响。

Differential effects of prenylation and s-acylation on type I and II ROPS membrane interaction and function.

作者信息

Sorek Nadav, Gutman Orit, Bar Einat, Abu-Abied Mohamad, Feng Xuehui, Running Mark P, Lewinsohn Efraim, Ori Naomi, Sadot Einat, Henis Yoav I, Yalovsky Shaul

机构信息

Department of Molecular Biology and Ecology of Plants , George S. Wise Faculty of Life Sciences, Tel Aviv University, Tel Aviv 69978, Israel.

出版信息

Plant Physiol. 2011 Feb;155(2):706-20. doi: 10.1104/pp.110.166850. Epub 2010 Dec 7.

DOI:10.1104/pp.110.166850
PMID:21139084
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3032461/
Abstract

Prenylation primarily by geranylgeranylation is required for membrane attachment and function of type I Rho of Plants (ROPs) and Gγ proteins, while type II ROPs are attached to the plasma membrane by S-acylation. Yet, it is not known how prenylation affects ROP membrane interaction dynamics and what are the functional redundancy and specificity of type I and type II ROPs. Here, we have used the expression of ROPs in mammalian cells together with geranylgeranylation and CaaX prenylation-deficient mutants to answer these questions. Our results show that the mechanism of type II ROP S-acylation and membrane attachment is unique to plants and likely responsible for the viability of plants in the absence of CaaX prenylation activity. The prenylation of ROPs determines their steady-state distribution between the plasma membrane and the cytosol but has little effect on membrane interaction dynamics. In addition, the prenyl group type has only minor effects on ROP function. Phenotypic analysis of the CaaX prenylation-deficient pluripetala mutant epidermal cells revealed that type I ROPs affect cell structure primarily on the adaxial side, while type II ROPs are functional and induce a novel cell division phenotype in this genetic background. Taken together, our studies show how prenyl and S-acyl lipid modifications affect ROP subcellular distribution, membrane interaction dynamics, and function.

摘要

植物I型Rho(ROPs)和Gγ蛋白的膜附着及功能主要需要通过香叶基香叶基化进行异戊二烯化,而II型ROPs则通过S-酰化附着于质膜。然而,尚不清楚异戊二烯化如何影响ROPs的膜相互作用动力学,以及I型和II型ROPs的功能冗余性和特异性是什么。在这里,我们利用ROPs在哺乳动物细胞中的表达以及香叶基香叶基化和CaaX异戊二烯化缺陷突变体来回答这些问题。我们的结果表明,II型ROPs的S-酰化和膜附着机制是植物特有的,可能是植物在缺乏CaaX异戊二烯化活性时存活的原因。ROPs的异戊二烯化决定了它们在质膜和细胞质之间的稳态分布,但对膜相互作用动力学影响很小。此外,异戊二烯基团类型对ROPs功能的影响也很小。对CaaX异戊二烯化缺陷的多花瓣突变体表皮细胞的表型分析表明,I型ROPs主要在近轴侧影响细胞结构,而II型ROPs在这种遗传背景下具有功能并诱导一种新的细胞分裂表型。综上所述,我们的研究表明了异戊二烯化和S-酰基脂质修饰如何影响ROPs的亚细胞分布、膜相互作用动力学和功能。