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首页> 外文期刊>The Journal of biological chemistry >Exploring the Topology of the Gid Complex, the E3 Ubiquitin Ligase Involved in Catabolite-induced Degradation of Gluconeogenic Enzymes
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Exploring the Topology of the Gid Complex, the E3 Ubiquitin Ligase Involved in Catabolite-induced Degradation of Gluconeogenic Enzymes

机译:探索GID复合物的拓扑,e3泛素连接酶参与氨基吡钛矿诱导的葡糖醛酶降解

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摘要

In the yeast Saccharomyces cerevisiae, key regulatory enzymes of gluconeogenesis such as fructose-1,6-bisphosphatase are degraded via the ubiquitin proteasome system when cells are replenished with glucose. Polyubiquitination is carried out by the Gid complex, a multisubunit ubiquitin ligase that consists of seven different Gid (glucose-induced degradation-deficient) proteins. Under gluconeogenic conditions the E3 ligase is composed of six subunits (Gid1/Vid30, Gid2/Rmd5, Gid5/Vid28, Gid7, Gid8, and Gid9/Fyv10). Upon the addition of glucose the regulatory subunit Gid4/Vid24 appears, binds to the Gid complex, and triggers ubiquitination of fructose-1,6-bisphosphatase. All seven proteins are essential for this process; however, nothing is known about the arrangement of the subunits in the complex. Interestingly, each Gid protein possesses several remarkable motifs (e.g. SPRY, LisH, CTLH domains) that may play a role in protein-protein interaction. We, therefore, generated altered versions of individual Gid proteins by deleting or mutating these domains and performed co-immunoprecipitation experiments to analyze the interaction between distinct subunits. Thus, we were able to create an initial model of the topology of this unusual E3 ubiquitin ligase.
机译:在酵母酿酒酵母酿酒酵母中,当用葡萄糖补充细胞时,通过泛素蛋白酶体系降解葡糖胺 - 1,6-双磷酸酶,例如果糖-1,6-双磷酸酶的关键调节酶。通过GID复合物进行多化,由七种不同的GID(葡萄糖诱导的降解缺陷)蛋白组成的多管泛素连接酶进行。在葡糖来的条件下,E3连接酶由六个亚基(GID1 / VID30,GID2 / RMD5,GID5 / Vid28,GID7,GID8和GID9 / Fyv10组成。在添加葡萄糖后,出现调节亚基GID4 / Vid24,与GID复合物结合,并触发果糖-1,6-双磷脂酶的泛素。所有七种蛋白质都是必不可少的;然而,关于复合物中的亚基的布置,没有任何知识。有趣的是,每种GID蛋白具有几种显着的基序(例如Spry,Lish,CTLH结构域),其可能在蛋白质 - 蛋白质相互作用中发挥作用。因此,我们通过删除或突变这些结构域并进行共同免疫沉淀实验来分析不同亚基之间的相互作用来产生改变的单个GID蛋白的版本。因此,我们能够创建这种不寻常的E3泛素连接酶的拓扑的初始模型。

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