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首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >Proteolysis of HCF-1 by Ser/Thr glycosylation-incompetent O-GlcNAc transferase: UDP-GlcNAc complexes
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Proteolysis of HCF-1 by Ser/Thr glycosylation-incompetent O-GlcNAc transferase: UDP-GlcNAc complexes

机译:通过不适合Ser / Thr糖基化的O-GlcNAc转移酶对HCF-1进行蛋白水解:UDP-GlcNAc复合物

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摘要

In complex with the cosubstrate UDP-N-acetylglucosamine (UDP-GlcNAc), O-linked-GlcNAc transferase (OGT) catalyzes Ser/Thr O-GlcNAcylation of many cellular proteins and proteolysis of the transcriptional coregulator HCF-1. Such a dual glycosyltransferase-protease activity, which occurs in the same active site, is unprecedented and integrates both reversible and irreversible forms of protein post-translational modification within one enzyme. Although occurring within the same active site, we show here that glycosylation and proteolysis occur through separable mechanisms. OGT consists of tetratricopeptide repeat (TPR) and catalytic domains, which, together with UDP-GlcNAc, are required for both glycosylation and proteolysis. Nevertheless, a specific TPR domain contact with the HCF-1 substrate is critical for proteolysis but not Ser/Thr glycosylation. In contrast, key catalytic domain residues and even a UDP-GlcNAc oxygen important for Ser/Thr glycosylation are irrelevant for proteolysis. Thus, from a dual glycosyltransferase-protease, essentially single-activity enzymes can be engineered both in vitro and in vivo. Curiously, whereas OGT-mediated HCF-1 proteolysis is limited to vertebrate species, invertebrate OGTs can cleave human HCF-1. We present a model for the evolution of HCF-1 proteolysis by OGT.
机译:与共底物UDP-N-乙酰氨基葡萄糖(UDP-GlcNAc)配合使用,O-连接的GlcNAc转移酶(OGT)催化许多细胞蛋白的Ser / Thr O-GlcNAcy化和转录共调节因子HCF-1的蛋白水解。这种在相同活性位点发生的双重糖基转移酶-蛋白酶活性是前所未有的,并且在一种酶中整合了蛋白质翻译后修饰的可逆和不可逆形式。尽管发生在相同的活性位点,我们在这里表明糖基化和蛋白水解是通过可分离的机制发生的。 OGT由四三肽重复序列(TPR)和催化域组成,它们与UDP-GlcNAc一起用于糖基化和蛋白水解。尽管如此,与HCF-1底物的特定TPR结构域接触对于蛋白水解至关重要,但对Ser / Thr糖基化不是关键。相反,对于Ser / Thr糖基化重要的关键催化结构域残基甚至UDP-GlcNAc氧与蛋白水解无关。因此,从双重糖基转移酶蛋白酶,基本上单活性酶可以在体外和体内被工程化。奇怪的是,尽管OGT介导的HCF-1蛋白水解仅限于脊椎动物,但无脊椎动物OGT可以裂解人HCF-1。我们提出了由OGT进化HCF-1蛋白水解的模型。

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