Brooks Susan A
School of Life Sciences, Oxford Brookes University, Gipsy Lane, Headington, Oxford OX3 0BP, UK.
Mol Biotechnol. 2009 Sep;43(1):76-88. doi: 10.1007/s12033-009-9184-6. Epub 2009 Jun 9.
More than half of human proteins are glycosylated by a bewildering array of complex and heterogeneous N- and O-linked glycans. They function in myriad biological processes, including cell adhesion and signalling and influence the physical characteristics, stability, function, activity and immunogenicity of soluble glycoproteins. A single protein may be glycosylated differently to yield heterogenous glycoforms. Glycosylation analysis is of increasing interest in biomedical and biological research, the pharmaceutical and healthcare industry and biotechnology. This is because it is increasingly apparent that glycosylation changes in diseases, such as cancer, making it a promising target for development of clinically useful biomarkers and therapeutics. Furthermore, as the non-human cells employed in expression systems glycosylate their proteins very differently to human cells, and as glycosylation changes unpredictably under changing environmental conditions, glycans analysis for quality control, optimum efficacy and safety of recombinant glycoproteins destined for human therapeutic use is paramount. The complexities of carbohydrate chemistry make analysis challenging and while there are a variety of robust methodologies available for glycan analysis, there is currently a pressing need for the development of new, streamlined, high throughput approaches accessible to non-specialist laboratories.
超过半数的人类蛋白质被一系列复杂多样的N-连接和O-连接聚糖糖基化。它们在无数生物过程中发挥作用,包括细胞黏附和信号传导,并影响可溶性糖蛋白的物理特性、稳定性、功能、活性和免疫原性。单一蛋白质可能会以不同方式进行糖基化,从而产生异质糖型。糖基化分析在生物医学和生物学研究、制药与医疗行业以及生物技术领域越来越受到关注。这是因为越来越明显的是,在诸如癌症等疾病中糖基化会发生变化,这使其成为开发临床有用生物标志物和治疗方法的一个有前景的靶点。此外,由于表达系统中使用的非人类细胞对其蛋白质的糖基化方式与人类细胞非常不同,并且由于糖基化在不断变化的环境条件下会不可预测地发生变化,因此对用于人类治疗用途的重组糖蛋白进行质量控制、最佳疗效和安全性的聚糖分析至关重要。碳水化合物化学的复杂性使得分析具有挑战性,虽然有多种强大的聚糖分析方法可用,但目前迫切需要开发新的、简化的、非专业实验室也能使用的高通量方法。