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重组小鼠高尔基体α1,2-甘露糖苷酶IA和IB的底物特异性及其与内质网和高尔基体加工α1,2-甘露糖苷酶的比较

Substrate specificities of recombinant murine Golgi alpha1, 2-mannosidases IA and IB and comparison with endoplasmic reticulum and Golgi processing alpha1,2-mannosidases.

作者信息

Lal A, Pang P, Kalelkar S, Romero P A, Herscovics A, Moremen K W

机构信息

Complex Carbohydrate Research Center and the Department of Biochemistry and Molecular Biology, University of Georgia, Athens, GA 30602, USA and the McGill Cancer Centre, McGill University, Montréal, Québec, Canada.

出版信息

Glycobiology. 1998 Oct;8(10):981-95. doi: 10.1093/glycob/8.10.981.

Abstract

The catalytic domains of murine Golgi alpha1,2-mannosidases IA and IB that are involved in N-glycan processing were expressed as secreted proteins in P.pastoris . Recombinant mannosidases IA and IB both required divalent cations for activity, were inhibited by deoxymannojirimycin and kifunensine, and exhibited similar catalytic constants using Manalpha1,2Manalpha-O-CH3as substrate. Mannosidase IA was purified as a 50 kDa catalytically active soluble fragment and shown to be an inverting glycosidase. Recombinant mannosidases IA and IB were used to cleave Man9GlcNAc and the isomers produced were identified by high performance liquid chromatography and proton-nuclear magnetic resonance spectroscopy. Man9GlcNAc was rapidly cleaved by both enzymes to Man6GlcNAc, followed by a much slower conversion to Man5GlcNAc. The same isomers of Man7GlcNAc and Man6GlcNAc were produced by both enzymes but different isomers of Man8GlcNAc were formed. When Man8GlcNAc (Man8B isomer) was used as substrate, rapid conversion to Man5GlcNAc was observed, and the same oligosaccharide isomer intermediates were formed by both enzymes. These results combined with proton-nuclear magnetic resonance spectroscopy data demonstrate that it is the terminal alpha1, 2-mannose residue missing in the Man8B isomer that is cleaved from Man9GlcNAc at a much slower rate. When rat liver endoplasmic reticulum membrane extracts were incubated with Man9GlcNAc2, Man8GlcNAc2was the major product and Man8B was the major isomer. In contrast, rat liver Golgi membranes rapidly cleaved Man9GlcNAc2to Man6GlcNAc2and more slowly to Man5GlcNAc2. In this case all three isomers of Man8GlcNAc2were formed as intermediates, but a distinctive isomer, Man8A, was predominant. Antiserum to recombinant mannosidase IA immunoprecipitated an enzyme from Golgi extracts with the same specificity as recombinant mannosidase IA. These immunodepleted membranes were enriched in a Man9GlcNAc2to Man8GlcNAc2-cleaving activity forming predominantly the Man8B isomer. These results suggest that mannosidases IA and IB in Golgi membranes prefer the Man8B isomer generated by a complementary mannosidase that removes a single mannose from Man9GlcNAc2.

摘要

参与N - 聚糖加工的小鼠高尔基体α1,2 - 甘露糖苷酶IA和IB的催化结构域在巴斯德毕赤酵母中作为分泌蛋白表达。重组甘露糖苷酶IA和IB的活性均需要二价阳离子,被脱氧甘露基野尻霉素和基夫内新抑制,并且以Manα1,2Manα - O - CH3作为底物时表现出相似的催化常数。甘露糖苷酶IA被纯化成为一个50 kDa具有催化活性的可溶性片段,并被证明是一种转化糖苷酶。重组甘露糖苷酶IA和IB用于切割Man9GlcNAc,通过高效液相色谱和质子核磁共振光谱鉴定产生的异构体。Man9GlcNAc被这两种酶迅速切割为Man6GlcNAc,随后向Man5GlcNAc的转化要慢得多。两种酶产生相同的Man7GlcNAc和Man6GlcNAc异构体,但形成不同的Man8GlcNAc异构体。当使用Man8GlcNAc(Man8B异构体)作为底物时,观察到其迅速转化为Man5GlcNAc,并且两种酶形成相同的寡糖异构体中间体。这些结果与质子核磁共振光谱数据相结合表明,从Man9GlcNAc中以慢得多的速率切割的是Man8B异构体中缺失终端α1,2 - 甘露糖残基。当大鼠肝脏内质网膜提取物与Man9GlcNAc2一起孵育时,Man8GlcNAc2是主要产物,Man8B是主要异构体。相反,大鼠肝脏高尔基体膜迅速将Man9GlcNAc2切割为Man6GlcNAc2,并更缓慢地切割为Man5GlcNAc2。在这种情况下,Man8GlcNAc2的所有三种异构体均作为中间体形成,但一种独特的异构体Man8A占主导地位。针对重组甘露糖苷酶IA的抗血清从高尔基体提取物中免疫沉淀出一种具有与重组甘露糖苷酶IA相同特异性的酶。这些免疫耗尽的膜富含将Man9GlcNAc2切割为Man8GlcNAc2的活性,主要形成Man8B异构体。这些结果表明,高尔基体膜中的甘露糖苷酶IA和IB更喜欢由一种从Man9GlcNAc2去除单个甘露糖的互补甘露糖苷酶产生的Man8B异构体。

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