Tytgat Hanne L P, Lebeer Sarah
University of Antwerp, Department of Bioscience Engineering, Antwerp, Belgium KU Leuven, Centre of Microbial and Plant Genetics, Leuven, Belgium.
University of Antwerp, Department of Bioscience Engineering, Antwerp, Belgium KU Leuven, Centre of Microbial and Plant Genetics, Leuven, Belgium
Microbiol Mol Biol Rev. 2014 Sep;78(3):372-417. doi: 10.1128/MMBR.00007-14.
Humans have been increasingly recognized as being superorganisms, living in close contact with a microbiota on all their mucosal surfaces. However, most studies on the human microbiota have focused on gaining comprehensive insights into the composition of the microbiota under different health conditions (e.g., enterotypes), while there is also a need for detailed knowledge of the different molecules that mediate interactions with the host. Glycoconjugates are an interesting class of molecules for detailed studies, as they form a strain-specific barcode on the surface of bacteria, mediating specific interactions with the host. Strikingly, most glycoconjugates are synthesized by similar biosynthesis mechanisms. Bacteria can produce their major glycoconjugates by using a sequential or an en bloc mechanism, with both mechanistic options coexisting in many species for different macromolecules. In this review, these common themes are conceptualized and illustrated for all major classes of known bacterial glycoconjugates, with a special focus on the rather recently emergent field of glycosylated proteins. We describe the biosynthesis and importance of glycoconjugates in both pathogenic and beneficial bacteria and in both Gram-positive and -negative organisms. The focus lies on microorganisms important for human physiology. In addition, the potential for a better knowledge of bacterial glycoconjugates in the emerging field of glycoengineering and other perspectives is discussed.
人类越来越被视为超级生物体,其所有黏膜表面都与微生物群密切接触。然而,大多数关于人类微生物群的研究都集中在全面了解不同健康状况下(如肠型)微生物群的组成,同时也需要详细了解介导与宿主相互作用的不同分子。糖缀合物是一类有趣的分子,适合进行详细研究,因为它们在细菌表面形成菌株特异性条形码,介导与宿主的特异性相互作用。引人注目的是,大多数糖缀合物是通过相似的生物合成机制合成的。细菌可以通过顺序或整体机制产生其主要糖缀合物,这两种机制在许多物种中针对不同大分子同时存在。在本综述中,这些共同主题针对所有已知细菌糖缀合物的主要类别进行了概念化和说明,特别关注了最近新兴的糖基化蛋白质领域。我们描述了糖缀合物在致病细菌和有益细菌以及革兰氏阳性和阴性生物体中的生物合成和重要性。重点在于对人类生理学重要的微生物。此外,还讨论了在新兴的糖工程领域以及其他方面更好地了解细菌糖缀合物的潜力。