为糖分子结构戴上帽子剖析人类糖基转移酶的功能

IF 2.4 3区 化学 Q3 BIOCHEMISTRY & MOLECULAR BIOLOGY Carbohydrate Research Pub Date : 2024-08-13 DOI:10.1016/j.carres.2024.109242
Khadra A. Mohamed, Stijn Kruf, Christian Büll
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引用次数: 0

摘要

人类聚糖以硅铝酸为帽盖,这些九碳糖介导了聚糖的许多生物功能和相互作用。结构多样的硫辛酸帽将人类细胞标记为自身细胞,并形成 Siglec 免疫受体和其他聚糖结合蛋白的配体。硅唾液酸能使宿主与人类微生物群相互作用,许多人类病原体利用硅唾液酸感染宿主细胞。在包括炎症和癌症在内的各种重大人类疾病中,都能发现携带硅唾液酸的聚糖(硅聚糖)发生了变化。人体细胞高尔基体中的 20 个硅氨酰转移酶家族成员将硅氨酰转移到不同的聚糖和聚糖共轭物上。硅氨酰转移酶催化特定的反应,形成独特的硅聚糖,或者它们具有共享功能,即多个家族成员生成相同的硅聚糖产物。此外,有些硅氨酰基转移酶会竞争相同的聚糖底物,但生成的硅氨酰基酸帽却不同。冗余和相互竞争的功能使得人们很难理解人类硅氨酰基转移酶在生物学中的作用,也很难揭示它们对病理生物学过程的具体贡献。最近的研究表明,由硅氨酰转移酶的个体功能、它们之间的相互作用以及来自高尔基体局部环境的线索所形成的生物合成规则能够协调硅氨聚糖的生物合成。在这篇综述中,我们讨论了目前对人类硅氨基转移酶家族的结构和功能的理解,并回顾了能够剖析单个硅氨基转移酶活性的最新技术进展。
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Putting a cap on the glycome: Dissecting human sialyltransferase functions

Human glycans are capped with sialic acids and these nine-carbon sugars mediate many of the biological functions and interactions of glycans. Structurally diverse sialic acid caps mark human cells as self and they form the ligands for the Siglec immune receptors and other glycan-binding proteins. Sialic acids enable host interactions with the human microbiome and many human pathogens utilize sialic acids to infect host cells. Alterations in sialic acid-carrying glycans, sialoglycans, can be found in every major human disease including inflammatory conditions and cancer. Twenty sialyltransferase family members in the Golgi apparatus of human cells transfer sialic acids to distinct glycans and glycoconjugates. Sialyltransferases catalyze specific reactions to form unique sialoglycans or they have shared functions where multiple family members generate the same sialoglycan product. Moreover, some sialyltransferases compete for the same glycan substrate, but create different sialic acid caps. The redundant and competing functions make it difficult to understand the individual roles of the human sialyltransferases in biology and to reveal the specific contributions to pathobiological processes. Recent insights hint towards the existence of biosynthetic rules formed by the individual functions of sialyltransferases, their interactions, and cues from the local Golgi environment that coordinate sialoglycan biosynthesis. In this review, we discuss the current structural and functional understanding of the human sialyltransferase family and we review recent technological advances that enable the dissection of individual sialyltransferase activities.

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来源期刊
Carbohydrate Research
Carbohydrate Research 化学-生化与分子生物学
CiteScore
5.00
自引率
3.20%
发文量
183
审稿时长
3.6 weeks
期刊介绍: Carbohydrate Research publishes reports of original research in the following areas of carbohydrate science: action of enzymes, analytical chemistry, biochemistry (biosynthesis, degradation, structural and functional biochemistry, conformation, molecular recognition, enzyme mechanisms, carbohydrate-processing enzymes, including glycosidases and glycosyltransferases), chemical synthesis, isolation of natural products, physicochemical studies, reactions and their mechanisms, the study of structures and stereochemistry, and technological aspects. Papers on polysaccharides should have a "molecular" component; that is a paper on new or modified polysaccharides should include structural information and characterization in addition to the usual studies of rheological properties and the like. A paper on a new, naturally occurring polysaccharide should include structural information, defining monosaccharide components and linkage sequence. Papers devoted wholly or partly to X-ray crystallographic studies, or to computational aspects (molecular mechanics or molecular orbital calculations, simulations via molecular dynamics), will be considered if they meet certain criteria. For computational papers the requirements are that the methods used be specified in sufficient detail to permit replication of the results, and that the conclusions be shown to have relevance to experimental observations - the authors'' own data or data from the literature. Specific directions for the presentation of X-ray data are given below under Results and "discussion".
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