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The Yeast GID Complex, a Novel Ubiquitin Ligase (E3) Involved in the Regulation of Carbohydrate Metabolism

机译:酵母GID复合物,一种新型的泛素连接酶(E3),参与碳水化合物代谢的调控。

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Glucose-dependent regulation of carbon metabolism is a subject of intensive studies. We have previously shown that the switch from gluconeogenesis to glycolysis is associated with ubiquitin-proteasome linked elimination of the key enzyme fructose-1,6-bisphosphatase. Seven g lucose i nduced degradation d eficient (Gid)-proteins found previously in a genomic screen were shown to form a complex that binds FBPase. One of the subunits, Gid2/Rmd5, contains a degenerated RING finger domain. In an in vitro assay, heterologous expression of GST-Gid2 leads to polyubiquitination of proteins. In addition, we show that a mutation in the degenerated RING domain of Gid2/Rmd5 abolishes fructose-1,6-bisphosphatase polyubiquitination and elimination in vivo. Six Gid proteins are present in gluconeogenic cells. A seventh protein, Gid4/Vid24, occurs upon glucose addition to gluconeogenic cells and is afterwards eliminated. Forcing abnormal expression of Gid4/Vid24 in gluconeogenic cells leads to fructose-1,6-bisphosphatase degradation. This suggests that Gid4/Vid24 initiates fructose-1,6-bisphosphatase polyubiquitination by the Gid complex and its subsequent elimination by the proteasome. We also show that an additional gluconeogenic enzyme, phosphoenolpyruvate carboxykinase, is subject to Gid complex-dependent degradation. Our study uncovers a new type of ubiquitin ligase complex composed of novel subunits involved in carbohydrate metabolism and identifies Gid4/Vid24 as a major regulator of this E3.
机译:葡萄糖依赖的碳代谢调节是深入研究的主题。我们以前已经表明,从糖异生到糖酵解的转变与泛素-蛋白酶体相关的关键酶果糖-1,6-双磷酸酶的消除有关。先前在基因组筛选中发现的七种葡萄糖诱导的降解缺陷(Gid)蛋白被证明形成了结合FBPase的复合物。亚基之一,Gid2 / Rmd5,包含一个退化的RING指结构域。在体外测定中,GST-Gid2的异源表达导致蛋白质的多泛素化。此外,我们表明,Gid2 / Rmd5的简并RING域中的突变消除了果糖1,6-双磷酸酶的多聚泛素化作用并在体内消除。糖异生细胞中存在六个Gid蛋白。第七种蛋白质Gid4 / Vid24,是在向葡萄糖异生细胞中添加葡萄糖后出现的,之后被消除。强迫糖异生细胞中Gid4 / Vid24的异常表达会导致果糖1,6-双磷酸酶降解。这表明Gid4 / Vid24通过Gid复合物引发果糖-1,6-双磷酸酶多聚泛素化,随后被蛋白酶体消除。我们还显示,另外的糖原异生酶,磷酸烯醇丙酮酸羧激酶,受到Gid依赖物的降解。我们的研究发现了一种新型的遍在蛋白连接酶复合物,该复合物由参与碳水化合物代谢的新亚基组成,并确定Gid4 / Vid24是该E3的主要调控因子。

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