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酿酒酵母中的核孔复合体功能受跨膜核孔蛋白Pom152p糖基化的影响。

Nuclear pore complex function in Saccharomyces cerevisiae is influenced by glycosylation of the transmembrane nucleoporin Pom152p.

作者信息

Belanger Kenneth D, Gupta Amitabha, MacDonald Kristy M, Ott Christina M, Hodge Christine A, Cole Charles M, Davis Laura I

机构信息

Department of Biology, Colgate University, Hamilton, New York 13346, USA.

出版信息

Genetics. 2005 Nov;171(3):935-47. doi: 10.1534/genetics.104.036319. Epub 2005 Aug 22.

DOI:10.1534/genetics.104.036319
PMID:16118201
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1456851/
Abstract

The regulated transport of proteins across the nuclear envelope occurs through nuclear pore complexes (NPCs), which are composed of >30 different protein subunits termed nucleoporins. While some nucleoporins are glycosylated, little about the role of glycosylation in NPC activity is understood. We have identified loss-of-function alleles of ALG12, encoding a mannosyltransferase, as suppressors of a temperature-sensitive mutation in the gene encoding the FXFG-nucleoporin NUP1. We observe that nup1Delta cells import nucleophilic proteins more efficiently when ALG12 is absent, suggesting that glycosylation may influence nuclear transport. Conditional nup1 and nup82 mutations are partially suppressed by the glycosylation inhibitor tunicamycin, while nic96 and nup116 alleles are hypersensitive to tunicamycin treatment, further implicating glycosylation in NPC function. Because Pom152p is a glycosylated, transmembrane nucleoporin, we examined genetic interactions between pom152 mutants and nup1Delta. A nup1 deletion is lethal in combination with pom152Delta, as well as with truncations of the N-terminal and transmembrane regions of Pom152p. However, truncations of the N-glycosylated, lumenal domain of Pom152p and pom152 mutants lacking N-linked glycosylation sites are viable in combination with nup1Delta, suppress nup1Delta temperature sensitivity, and partially suppress the nuclear protein import defects associated with the deletion of NUP1. These data provide compelling evidence for a role for glycosylation in influencing NPC function.

摘要

蛋白质通过核膜的调控运输是通过核孔复合体(NPC)进行的,核孔复合体由30多种不同的蛋白质亚基组成,这些亚基被称为核孔蛋白。虽然一些核孔蛋白是糖基化的,但对于糖基化在核孔复合体活性中的作用了解甚少。我们已经鉴定出编码甘露糖基转移酶的ALG12功能缺失等位基因,作为编码FXFG核孔蛋白NUP1的基因中温度敏感突变的抑制子。我们观察到,当缺乏ALG12时,nup1Delta细胞更有效地导入亲核蛋白,这表明糖基化可能影响核运输。糖基化抑制剂衣霉素部分抑制了条件性nup1和nup82突变,而nic96和nup116等位基因对衣霉素处理高度敏感,这进一步表明糖基化与核孔复合体功能有关。由于Pom152p是一种糖基化的跨膜核孔蛋白,我们研究了pom152突变体与nup1Delta之间的遗传相互作用。nup1缺失与pom152Delta以及Pom152p的N端和跨膜区域的截短组合是致死的。然而,Pom152p的N-糖基化腔结构域的截短以及缺乏N-连接糖基化位点的pom152突变体与nup1Delta组合时是可行的,抑制了nupDelta的温度敏感性,并部分抑制了与NUP1缺失相关的核蛋白导入缺陷。这些数据为糖基化在影响核孔复合体功能中的作用提供了有力证据。

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本文引用的文献

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A novel allele of Saccharomyces cerevisiae NDC1 reveals a potential role for the spindle pole body component Ndc1p in nuclear pore assembly.酿酒酵母NDC1的一个新等位基因揭示了纺锤极体成分Ndc1p在核孔组装中的潜在作用。
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