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原位细胞糖分析。

In Situ Cellular Glycan Analysis.

机构信息

State Key Laboratory of Analytical Chemistry for Life Science, School of Chemistry and Chemical Engineering , Nanjing University , Nanjing 210023 , P. R. China.

出版信息

Acc Chem Res. 2018 Apr 17;51(4):890-899. doi: 10.1021/acs.accounts.7b00617. Epub 2018 Mar 29.

Abstract

Glycan decorates all mammalian cell surfaces through glycosylation, which is one of the most important post-modifications of proteins. Glycans mediate a wide variety of biological processes, including cell growth and differentiation, cell-cell communication, immune response, pathogen interaction, and intracellular signaling events. Besides, tumor cells aberrantly express distinct sets of glycans, which can indicate different tumor onsets and progression processes. Thus, analysis of cellular glycans may contribute to understanding of glycan-related biological processes and correlation of glycan patterns with disease states for clinical diagnosis and treatment. Although proteomics and glycomics have included great efforts for in vitro study of glycan structures and functions using lysis samples of cells or tissues, they cannot offer real-time qualitative or quantitative information, especially spatial distribution, of glycans on/in intact cells, which is important to the revelation of glycan-related biological events. Moreover, the complex lysis and separation procedures may bring unpredictable loss of glycan information. Focusing on the great urgency for in situ analysis of cellular glycans, our group developed a series of methods for in situ analysis of cellular glycans in the past 10 years. By construction of electrochemical glycan-recognizable probes, glycans on the cell surface can be quantified by direct or competitive electrochemical detection. Using multichannel electrodes or encoded lectin probes, multiple glycans on the cell surface can be dynamically monitored simultaneously. Through design of functional nanoprobes, the cell surface protein-specific glycans and intracellular glycan-related enzymes can be visualized by fluorescence or Raman imaging. Besides, some biological enzymes-based methods have been developed for remodeling or imaging of protein-specific glycans and other types of glycoconjugates, such as gangliosides. Through tracing the changes of glycan expression induced by drugs or gene interference, some glycan-related biological processes have been deduced or proved, demonstrating the reliability and practicability of the developed methods. This Account surveys the key technologies developed in this area, along with the discussion on the shortages of current methodology as well as the possible strategies to overcome those shortages. The future trend in this topic is also discussed. It is expected that this Account can provide a versatile arsenal for chemical and biological researchers to unravel the complex mechanisms involved in glycan-related biological processes and light new beacons in tumor diagnosis and treatment.

摘要

聚糖通过糖基化作用修饰所有哺乳动物细胞表面,糖基化是蛋白质最重要的翻译后修饰之一。糖基化在多种生物学过程中发挥作用,包括细胞生长和分化、细胞间通讯、免疫反应、病原体相互作用以及细胞内信号事件。此外,肿瘤细胞异常表达独特的聚糖集,这可以指示不同的肿瘤起始和进展过程。因此,分析细胞中的聚糖可能有助于了解与聚糖相关的生物学过程,并将聚糖模式与疾病状态相关联,以进行临床诊断和治疗。尽管蛋白质组学和糖组学已经投入大量精力,使用细胞或组织的裂解样本在体外研究糖链结构和功能,但它们无法提供关于完整细胞内聚糖的实时定性或定量信息,特别是关于其空间分布的信息,而这对于揭示与聚糖相关的生物学事件非常重要。此外,复杂的裂解和分离过程可能会带来不可预测的聚糖信息损失。鉴于对细胞内聚糖的原位分析的迫切需求,我们小组在过去 10 年中开发了一系列用于细胞内聚糖原位分析的方法。通过构建电化学糖识别探针,可以通过直接或竞争电化学检测来定量细胞表面上的聚糖。使用多通道电极或编码凝集素探针,可以同时动态监测细胞表面上的多种聚糖。通过设计功能纳米探针,可以通过荧光或拉曼成像来可视化细胞表面蛋白特异性聚糖和细胞内糖相关酶。此外,还开发了一些基于生物酶的方法,用于重塑或成像蛋白特异性聚糖和其他类型的糖缀合物,例如神经节苷脂。通过跟踪药物或基因干扰引起的聚糖表达变化,可以推断或证明一些与聚糖相关的生物学过程,从而证明了所开发方法的可靠性和实用性。本综述调查了该领域中开发的关键技术,并讨论了当前方法学的局限性以及克服这些局限性的可能策略。还讨论了该主题的未来趋势。预计本综述将为化学和生物学研究人员提供一个通用的武器库,以揭示与聚糖相关的生物学过程中的复杂机制,并为肿瘤诊断和治疗开辟新的途径。

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