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POMT2,沃克-沃伯格综合征中的一种关键酶:体细胞型sPOMT2而非睾丸特异性tPOMT2对体内甘露糖基转移酶活性至关重要。

POMT2, a key enzyme in Walker-Warburg syndrome: somatic sPOMT2, but not testis-specific tPOMT2, is crucial for mannosyltransferase activity in vivo.

作者信息

Lommel Mark, Willer Tobias, Strahl Sabine

机构信息

Department of Cell Chemistry, Heidelberg Institute of Plant Sciences, University of Heidelberg, Im Neuenheimer Feld 360, 69120 Heidelberg, Germany.

出版信息

Glycobiology. 2008 Aug;18(8):615-25. doi: 10.1093/glycob/cwn042. Epub 2008 May 19.

Abstract

O-Mannosylation represents an evolutionarily conserved, essential protein modification. In mammals the protein O-mannosyltransferases POMT1 and POMT2 act as a heteromeric complex to initiate O-mannosylation in the endoplasmic reticulum. Mutations in human POMT1 and POMT2 cause a group of congenital muscular dystrophies due to reduced O-glycosylation of alpha-dystroglycan. The most severe of these autosomal recessive conditions is Walker-Warburg syndrome (WWS) with severe brain and ocular involvement. We previously showed in the murine model that Pomt1 is expressed in WWS-related tissues both during embryogenesis and in adults. Whereas there is only a single Pomt1 transcript in adult mice, we demonstrated that there are two Pomt2 transcripts, somatic sPomt2 and testis-specific tPomt2. In this study we demonstrate that sPomt2, but not tPomt2, is prominently expressed in mouse embryos in the tissues that are most severely affected in WWS (developing muscle, eye, and brain). Correlation of POMT transcripts and protein isoforms with POMT mannosyltransferase enzyme activity demonstrates that sPOMT2-POMT1 complexes catalyze mannosyltransfer in adult somatic tissues and testis. It is suggested that the gonadal defects described in some WWS cases are associated with defects in O-mannosylation. Our data further show that whereas sPOMT2 is widely expressed, tPOMT2 is restricted to the acrosome of male germ cells and is not involved in the biosynthesis of O-mannosyl glycans in vivo. We prove that tPOMT2 is highly conserved among mammals, including humans, suggesting a crucial function that is distinct from sPOMT2.

摘要

O-甘露糖基化是一种进化上保守的重要蛋白质修饰。在哺乳动物中,蛋白质O-甘露糖基转移酶POMT1和POMT2作为异源复合物在内质网中启动O-甘露糖基化。人类POMT1和POMT2的突变会导致一组先天性肌营养不良症,原因是α- dystroglycan的O-糖基化减少。这些常染色体隐性疾病中最严重的是沃克-沃尔堡综合征(WWS),伴有严重的脑和眼受累。我们之前在小鼠模型中表明,Pomt1在胚胎发育和成年期的WWS相关组织中均有表达。成年小鼠中只有一个Pomt1转录本,而我们证明有两个Pomt2转录本,即体细胞型sPomt2和睾丸特异性tPomt2。在本研究中,我们证明sPomt2而非tPomt2在WWS中受影响最严重的组织(发育中的肌肉、眼睛和大脑)的小鼠胚胎中显著表达。POMT转录本和蛋白质异构体与POMT甘露糖基转移酶活性的相关性表明,sPOMT2 - POMT1复合物在成年体细胞组织和睾丸中催化甘露糖基转移。提示一些WWS病例中描述的性腺缺陷与O-甘露糖基化缺陷有关。我们的数据进一步表明,虽然sPOMT2广泛表达,但tPOMT2仅限于雄性生殖细胞的顶体,且不参与体内O-甘露糖基聚糖的生物合成。我们证明tPOMT2在包括人类在内的哺乳动物中高度保守,提示其具有与sPOMT2不同的关键功能。

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