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多形汉逊酵母HOC1、OCH1和OCR1基因作为参与蛋白质糖基化的酵母OCH1甘露糖基转移酶家族成员的功能表征。

Functional characterization of the Hansenula polymorpha HOC1, OCH1, and OCR1 genes as members of the yeast OCH1 mannosyltransferase family involved in protein glycosylation.

作者信息

Kim Moo Woong, Kim Eun Jung, Kim Jeong-Yoon, Park Jeong-Seok, Oh Doo-Byoung, Shimma Yoh-ichi, Chiba Yasunori, Jigami Yoshifumi, Rhee Sang Ki, Kang Hyun Ah

机构信息

Metabolic Engineering Laboratory, Korea Research Institute of Bioscience and Biotechnology, Daejeon 305-600, Korea.

出版信息

J Biol Chem. 2006 Mar 10;281(10):6261-72. doi: 10.1074/jbc.M508507200. Epub 2006 Jan 10.

Abstract

The alpha-1,6-mannosyltransferase encoded by Saccharomyces cerevisiae OCH1 (ScOCH1) is responsible for the outer chain initiation of N-linked oligosaccharides. To identify the genes involved in the first step of outer chain biosynthesis in the methylotrophic yeast Hansenula polymorpha, we undertook the functional analysis of three H. polymorpha genes, HpHOC1, HpOCH1, and HpOCR1, that belong to the OCH1 family containing seven members with significant sequence identities to ScOCH1. The deletions of these H. polymorpha genes individually resulted in several phenotypes suggestive of cell wall defects. Whereas the deletion of HpHOC1 (Hphoc1Delta) did not generate any detectable changes in N-glycosylation, the null mutant strains of HpOCH1 (Hpoch1Delta) and HpOCR1 (Hpocr1Delta) displayed a remarkable reduction in hypermannosylation. Although the apparent phenotypes of Hpocr1Delta were most similar to those of S. cerevisiae och1 mutants, the detailed structural analysis of N-glycans revealed that the major defect of Hpocr1Delta is not in the initiation step but rather in the subsequent step of outer chain elongation by alpha-1,2-mannose addition. Most interestingly, Hpocr1Delta showed a severe defect in the O-linked glycosylation of extracellular chitinase, representing HpOCR1 as a novel member of the OCH1 family implicated in both N- and O-linked glycosylation. In contrast, addition of the first alpha-1,6-mannose residue onto the core oligosaccharide Man8GlcNAc2 was completely blocked in Hpoch1Delta despite the comparable growth of its wild type under normal growth conditions. The complementation of the S. cerevisiae och1 null mutation by the expression of HpOCH1 and the lack of in vitro alpha-1,6-mannosyltransferase activity in Hpoch1Delta provided supportive evidence that HpOCH1 is the functional orthologue of ScOCH1. The engineered Hpoch1Delta strain with the targeted expression of Aspergillus saitoi alpha-1,2-mannosidase in the endoplasmic reticulum was shown to produce human-compatible high mannose-type Man5GlcNAc2 oligosaccharide as a major N-glycan.

摘要

酿酒酵母OCH1(ScOCH1)编码的α-1,6-甘露糖基转移酶负责N-连接寡糖外链的起始。为了鉴定多形汉逊酵母中参与外链生物合成第一步的基因,我们对多形汉逊酵母的三个基因HpHOC1、HpOCH1和HpOCR1进行了功能分析,它们属于OCH1家族,该家族有七个成员与ScOCH1具有显著的序列同源性。单独缺失这些多形汉逊酵母基因会导致几种提示细胞壁缺陷的表型。虽然缺失HpHOC1(Hphoc1Delta)在N-糖基化方面未产生任何可检测到的变化,但HpOCH1(Hpoch1Delta)和HpOCR1(Hpocr1Delta)的缺失突变株高甘露糖基化显著降低。尽管Hpocr1Delta的明显表型与酿酒酵母och1突变体的表型最相似,但对N-聚糖的详细结构分析表明,Hpocr1Delta的主要缺陷不在于起始步骤,而在于通过添加α-1,2-甘露糖进行外链延伸的后续步骤。最有趣的是,Hpocr1Delta在细胞外几丁质酶的O-连接糖基化方面表现出严重缺陷,表明HpOCR1是OCH1家族中一个涉及N-和O-连接糖基化的新成员。相比之下,尽管Hpoch1Delta的野生型在正常生长条件下生长情况相当,但在Hpoch1Delta中,核心寡糖Man8GlcNAc2上第一个α-1,6-甘露糖残基的添加被完全阻断。通过表达HpOCH1对酿酒酵母och1缺失突变进行互补,以及Hpoch1Delta缺乏体外α-1,6-甘露糖基转移酶活性,提供了支持性证据,证明HpOCH1是ScOCH1的功能同源物。在内质网中靶向表达斋藤曲霉α-1,2-甘露糖苷酶的工程化Hpoch1Delta菌株被证明能产生与人兼容的高甘露糖型Man5GlcNAc2寡糖作为主要的N-聚糖。

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