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N-聚糖在维持蛋白 O-甘露糖基转移酶 POMT1 和 POMT2 活性中的作用。

Role of N-glycans in maintaining the activity of protein O-mannosyltransferases POMT1 and POMT2.

机构信息

Glycobiology Research Group, Tokyo Metropolitan Institute of Gerontology, Foundation for Research on Aging and Promotion of Human Welfare, 35-2 Sakaecho, Itabashi-ku, Tokyo, Japan.

出版信息

J Biochem. 2010 Mar;147(3):337-44. doi: 10.1093/jb/mvp170. Epub 2009 Oct 29.

Abstract

The complex of protein O-mannosyltransferase 1 (POMT1) and POMT2 catalyzes the initial step of O-mannosyl glycan biosynthesis. The mutations in either POMT1 or POMT2 can lead to Walker-Warburg syndrome, a congenital muscular dystrophy with abnormal neuronal migration. Here, we used three algorithms for predicting transmembrane helices to construct the secondary structural models of human POMT1 and POMT2. In these models, POMT1 and POMT2 have seven- and nine-transmembrane helices and contain four and five potential N-glycosylation sites, respectively. To determine whether these sites are actually glycosylated, we prepared mutant proteins that were defective in each site by site-directed mutagenesis. Three of the POMT1 sites and all of the POMT2 sites were found to be N-glycosylated, suggesting that these sites face the luminal side of the endoplasmic reticulum. Mutation of any single site did not significantly affect POMT activity, but mutations of all N-glycosylation sites of either POMT1 or POMT2 caused a loss of POMT activity. The loss of activity appeared to be due to the decreased hydrophilicity. These results suggest that the N-glycosylation of POMT1 and POMT2 is required for maintaining the conformation as well as the activity of the POMT1-POMT2 complex.

摘要

蛋白 O-甘露糖基转移酶 1(POMT1)和 POMT2 复合物催化 O-甘露糖聚糖生物合成的初始步骤。POMT1 或 POMT2 的突变可导致 Walker-Warburg 综合征,这是一种伴有异常神经元迁移的先天性肌肉营养不良症。在这里,我们使用了三种跨膜螺旋预测算法来构建人 POMT1 和 POMT2 的二级结构模型。在这些模型中,POMT1 和 POMT2 具有七个和九个跨膜螺旋,分别包含四个和五个潜在的 N-糖基化位点。为了确定这些位点是否实际上被糖基化,我们通过定点诱变制备了在每个位点都有缺陷的突变蛋白。发现 POMT1 的三个位点和 POMT2 的所有位点都被 N-糖基化,表明这些位点朝向内质网的腔侧。单个位点的突变不会显著影响 POMT 活性,但 POMT1 或 POMT2 的任何 N-糖基化位点的突变都会导致 POMT 活性丧失。活性丧失似乎是由于亲水性降低所致。这些结果表明,POMT1 和 POMT2 的 N-糖基化对于维持 POMT1-POMT2 复合物的构象和活性是必需的。

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