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表层糖蛋白:细菌糖基化多样性的一个例子,对纳米生物技术具有潜在影响。

Surface-layer glycoproteins: an example for the diversity of bacterial glycosylation with promising impacts on nanobiotechnology.

作者信息

Schäffer Christina, Messner Paul

机构信息

Center for NanoBiotechnology, University of Applied Life Sciences and Natural Resources, Gregor-Mendel-Strasse 33, A-1180 Wien, Austria.

出版信息

Glycobiology. 2004 Aug;14(8):31R-42R. doi: 10.1093/glycob/cwh064. Epub 2004 Mar 24.

DOI:10.1093/glycob/cwh064
PMID:15044388
Abstract

Bacterial cell surface layers, referred to simply as S-layers, have been described for all major phylogenetic groups of bacteria, which may indicate their pivotal role for a bacterium in its natural habitat. They have the unique ability to assemble into two-dimensional crystalline arrays that completely cover the bacterial cells. Glycosylation represents the most frequent modification of S-layer proteins. S-layer glycoproteins constitute a class of glycoconjugates first isolated in the mid-1970s, but S-layer glycoprotein research is still being regarded as an "exotic field of glycobiology," possibly because of its "noneukaryotic" character. Extensive work over the past 30 years provided evidence of an enormous diversity of S-layer glycoproteins that have been created in nature over 3 billion years of prokaryotic evolution. These glycoconjugates are substantially different from eukaryotic glycoproteins, with regard to both composition and structure; nevertheless, some general structural concepts may be deduced. The awareness of the high application potential of S-layer glycoproteins, especially in combination with their intrinsic cell surface display feature, in the field of modern nanobiotechnology as a base for glycoengineering has recently led to the investigation of the S-layer protein glycosylation process at the molecular level, which has lagged behind the structural studies due to the lack of suitable molecular tools. From that work an even more interesting picture of this class of glycoconjugates is emerging. The availability of purified enzymes from S-layer glycan biosynthesis pathways exhibiting increased stabilities and/or rare sugar specificities in conjunction with preliminary genomic data on S-layer glycan biosynthesis clusters will pave the way for the rational design of S-layer neoglycoproteins.

摘要

细菌细胞表面层,简称为S层,在细菌的所有主要系统发育类群中都有描述,这可能表明其在细菌自然栖息地中的关键作用。它们具有独特的能力,能够组装成完全覆盖细菌细胞的二维晶体阵列。糖基化是S层蛋白最常见的修饰。S层糖蛋白构成了一类最早于20世纪70年代中期分离出来的糖缀合物,但S层糖蛋白的研究仍被视为糖生物学的一个“奇特领域”,可能是因为其“非真核”特性。过去30年的大量工作证明,在30多亿年的原核生物进化过程中,自然界中产生了种类极其多样的S层糖蛋白。这些糖缀合物在组成和结构上与真核糖蛋白有很大不同;然而,可以推导出一些一般的结构概念。最近,人们意识到S层糖蛋白在现代纳米生物技术领域具有很高的应用潜力,特别是结合其固有的细胞表面展示特性,可作为糖工程的基础,这导致了在分子水平上对S层蛋白糖基化过程的研究,由于缺乏合适的分子工具,该研究一直落后于结构研究。从这项工作中,这类糖缀合物的一幅更加有趣的图景正在浮现。从S层聚糖生物合成途径中获得的纯化酶具有更高的稳定性和/或稀有糖特异性,再加上关于S层聚糖生物合成簇的初步基因组数据,将为合理设计S层新糖蛋白铺平道路。

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