微流控芯片分析驱动的液体活检在癌症诊断中的最新进展和展望。

Latest advances and perspectives of liquid biopsy for cancer diagnostics driven by microfluidic on-chip assays.

机构信息

Cixi Institute of Biomedical Engineering, International Cooperation Base of Biomedical Materials Technology and Application, Chinese Academy of Science (CAS) Key Laboratory of Magnetic Materials and Devices and Zhejiang Engineering Research Center for Biomedical Materials, Ningbo Institute of Materials Technology and Engineering, CAS, Ningbo 315201, P.R. China.

Advanced Energy Science and Technology Guangdong Laboratory, Huizhou 516000, P.R. China.

出版信息

Lab Chip. 2023 Jun 28;23(13):2922-2941. doi: 10.1039/d2lc00837h.

Abstract

Microfluidic-based lab-on-a-chip technology is a multidisciplinary approach, which has evolved rapidly in the past decade and remains a hot research topic as a promising microanalysis platform for a plethora of biomedical applications. Microfluidic chips have been successfully applied in cancer diagnosis and monitoring, given that they can lead to the effective separation and analysis of cancer-derived substances such as extracellular vesicles (EVs), circulating tumour cells (CTCs) and circulating DNA (ctDNA), proteins and other metabolites. In particular, EVs and CTCs are two outstanding objects for cancer liquid biopsy, which share similar membrane structures but possess different sizes. Through molecular typing and concentration detection of EVs, CTCs and ctDNA, disease-related information can be well-learned, including the development stage and prognosis of cancer. However, the conventional separation and detection methods are often time-consuming with limited efficiency. In comparison, the use of microfluidic platforms can effectively simplify the separation and enrichment process and improve the detection efficiency significantly. Although review papers have been published on the application of microfluidic chips for the analysis of objects of liquid biopsy, generally they focused on a specific detection target, lacking a descriptive extraction of the commonality of LOC devices used in liquid biopsy. Thus, few of them present a comprehensive overview and outlook on the design and application of microfluidic chips for liquid biopsy. This motivated us to prepare this review paper, which is divided into 4 parts. The first part aims to elucidate the material selection and fabrication approaches of microfluidic chips. In the second part, the important separation strategies, including physical methods and biological methods, are discussed. The third part highlights the advanced on-chip technologies for the detection of EVs, CTCs and ctDNA by providing practical examples. In the fourth part, novel on-chip applications of single cells/exosomes are introduced. Finally, the prospective outlook and challenges for the long-term development of on-chip assays are envisioned and discussed.

摘要

基于微流控的芯片实验室技术是一种多学科的方法,在过去十年中发展迅速,作为一种有前途的微分析平台,用于众多的生物医学应用,仍然是一个热门的研究课题。微流控芯片已成功应用于癌症诊断和监测,因为它们可以有效地分离和分析癌症衍生物质,如细胞外囊泡 (EVs)、循环肿瘤细胞 (CTCs) 和循环 DNA (ctDNA)、蛋白质和其他代谢物。特别是,EVs 和 CTCs 是癌症液体活检的两个突出对象,它们具有相似的膜结构,但大小不同。通过 EVs、CTCs 和 ctDNA 的分子分型和浓度检测,可以很好地了解与疾病相关的信息,包括癌症的发展阶段和预后。然而,传统的分离和检测方法通常耗时且效率有限。相比之下,微流控平台的使用可以有效地简化分离和富集过程,显著提高检测效率。尽管已经发表了关于微流控芯片在液体活检分析中应用的综述论文,但通常它们侧重于特定的检测目标,缺乏对液体活检中使用的 LOC 设备共性的描述性提取。因此,它们很少对微流控芯片用于液体活检的设计和应用进行全面概述和展望。这促使我们编写了这篇综述论文,它分为 4 个部分。第一部分旨在阐明微流控芯片的材料选择和制造方法。第二部分讨论了重要的分离策略,包括物理方法和生物学方法。第三部分通过提供实际示例,重点介绍了用于检测 EVs、CTCs 和 ctDNA 的先进的片上技术。第四部分介绍了单细胞/外泌体的新型片上应用。最后,对长期发展的展望和挑战进行了预测和讨论。

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