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MAX2参与一个SCF复合体,该复合体在节点处局部发挥作用以抑制枝条分枝。

MAX2 participates in an SCF complex which acts locally at the node to suppress shoot branching.

作者信息

Stirnberg Petra, Furner Ian J, Ottoline Leyser H M

机构信息

Department of Biology, University of York, PO Box 373, York YO10 5YW, UK.

出版信息

Plant J. 2007 Apr;50(1):80-94. doi: 10.1111/j.1365-313X.2007.03032.x. Epub 2007 Mar 5.

DOI:10.1111/j.1365-313X.2007.03032.x
PMID:17346265
Abstract

The Arabidopsis gene ORE9/MAX2 encodes an F-box leucine-rich repeat protein. F-box proteins function as the substrate-recruiting subunit of SCF-type ubiquitin E3 ligases in protein ubiquitination. One of several phenotypes of max2 mutants, the highly branched shoot, is identical to mutants at three other MAX loci. Reciprocal grafting, double mutant analysis and gene cloning suggest that all MAX genes act in a common pathway, where branching suppression depends on MAX2 activity in the shoot, in response to an acropetally mobile signal that requires MAX3, MAX4 and MAX1 for its production. Here, we further investigate the site and mode of action of MAX2 in branching. Transcript analysis and a translational MAX2-GUS fusion indicate that MAX2 is expressed throughout the plant, most highly in developing vasculature, and is nuclear-localized in many cell types. Analysis of cell autonomy shows that MAX2 acts locally, either in the axillary bud, or in adjacent stem or petiole tissue. Expression of MAX2 from the CaMV 35S promoter complements the max2 mutant, does not affect branching in a wild-type background and partially rescues increased branching in the max1, max3 and max4 backgrounds. Expression of mutant MAX2, lacking the F-box domain, under the CaMV 35S promoter does not complement max2, and dominant-negatively affects branching in the wild-type background. Myc-epitope-tagged MAX2 interacts with the core SCF subunits ASK1 and AtCUL1 in planta. We conclude that axillary shoot growth is controlled locally, at the node, by an SCF(MAX2), the action of which is enhanced by the mobile MAX signal.

摘要

拟南芥基因ORE9/MAX2编码一种F-box富含亮氨酸重复蛋白。F-box蛋白在蛋白质泛素化过程中作为SCF型泛素E3连接酶的底物招募亚基发挥作用。max2突变体的几种表型之一,即高度分支的茎,与其他三个MAX位点的突变体相同。互作嫁接、双突变分析和基因克隆表明,所有MAX基因都在一条共同的途径中起作用,其中分枝抑制取决于茎中MAX2的活性,以响应一种需要MAX3、MAX4和MAX1来产生的向顶移动信号。在这里,我们进一步研究MAX2在分枝中的作用位点和作用方式。转录分析和翻译的MAX2-GUS融合表明MAX2在整个植物中表达,在发育中的维管组织中表达最高,并且在许多细胞类型中定位于细胞核。细胞自主性分析表明,MAX2在腋芽或相邻的茎或叶柄组织中局部起作用。来自CaMV 35S启动子的MAX2表达补充了max2突变体,在野生型背景下不影响分枝,并部分挽救了max1、max3和max4背景下增加的分枝。在CaMV 35S启动子下缺乏F-box结构域的突变型MAX2的表达不能补充max2,并且在野生型背景下对分枝产生显性负效应。Myc表位标记的MAX2在植物中与核心SCF亚基ASK1和AtCUL1相互作用。我们得出结论,腋芽生长在节点处由SCF(MAX2)局部控制,其作用通过移动的MAX信号增强。

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