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EGF 重复特异性 O-连接糖基化转移酶 Eogt 在果蝇中与 notch 信号通路和嘧啶代谢通路相互作用。

The EGF repeat-specific O-GlcNAc-transferase Eogt interacts with notch signaling and pyrimidine metabolism pathways in Drosophila.

机构信息

Department of Cell Biology, Albert Einstein College of Medicine, New York, New York, USA.

出版信息

PLoS One. 2013 May 9;8(5):e62835. doi: 10.1371/journal.pone.0062835. Print 2013.

Abstract

The O-GlcNAc transferase Eogt modifies EGF repeats in proteins that transit the secretory pathway, including Dumpy and Notch. In this paper, we show that the Notch ligands Delta and Serrate are also substrates of Eogt, that mutation of a putative UDP-GlcNAc binding DXD motif greatly reduces enzyme activity, and that Eogt and the cytoplasmic O-GlcNAc transferase Ogt have distinct substrates in Drosophila larvae. Loss of Eogt is larval lethal and disrupts Dumpy functions, but does not obviously perturb Notch signaling. To identify novel genetic interactions with eogt, we investigated dominant modification of wing blister formation caused by knock-down of eogt. Unexpectedly, heterozygosity for several members of the canonical Notch signaling pathway suppressed wing blister formation. And importantly, extensive genetic interactions with mutants in pyrimidine metabolism were identified. Removal of pyrimidine synthesis alleles suppressed wing blister formation, while removal of uracil catabolism alleles was synthetic lethal with eogt knock-down. Therefore, Eogt may regulate protein functions by O-GlcNAc modification of their EGF repeats, and cellular metabolism by affecting pyrimidine synthesis and catabolism. We propose that eogt knock-down in the wing leads to metabolic and signaling perturbations that increase cytosolic uracil levels, thereby causing wing blister formation.

摘要

O-GlcNAc 转移酶 Eogt 修饰穿越分泌途径的蛋白质中的 EGF 重复序列,包括 Dumpy 和 Notch。在本文中,我们表明 Notch 配体 Delta 和 Serrate 也是 Eogt 的底物,假定的 UDP-GlcNAc 结合 DXD 基序的突变大大降低了酶活性,并且 Eogt 和细胞质 O-GlcNAc 转移酶 Ogt 在果蝇幼虫中有不同的底物。Eogt 的缺失是幼虫致死的,并破坏了 Dumpy 的功能,但并没有明显扰乱 Notch 信号。为了鉴定与 eogt 的新的遗传相互作用,我们研究了 eogt 敲低导致的翅膀水疱形成的显性修饰。出乎意料的是,经典 Notch 信号通路的几个成员的杂合性抑制了翅膀水疱的形成。重要的是,还鉴定了与嘧啶代谢突变体的广泛遗传相互作用。嘧啶合成等位基因的缺失抑制了翅膀水疱的形成,而嘧啶分解等位基因的缺失与 eogt 敲低具有合成致死性。因此,Eogt 可能通过 O-GlcNAc 修饰其 EGF 重复来调节蛋白质功能,并通过影响嘧啶合成和分解来调节细胞代谢。我们提出,翅膀中的 eogt 敲低导致代谢和信号转导的扰动,增加了细胞质尿嘧啶水平,从而导致翅膀水疱的形成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/634f/3650022/2bcf00d7a55f/pone.0062835.g001.jpg

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