Hakim Maziar, Kermanshah Leyla, Abouali Hesam, Hashemi Hanieh Mohammad, Yari Alireza, Khorasheh Farhad, Alemzadeh Iran, Vossoughi Manouchehr
Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran, Iran.
Biophys Rev. 2022 Apr 14;14(2):517-543. doi: 10.1007/s12551-022-00944-8. eCollection 2022 Apr.
Cancer has long been a leading cause of death. The primary tumor, however, is not the main cause of death in more than 90% of cases. It is the complex process of metastasis that makes cancer deadly. The invasion metastasis cascade is the multi-step biological process of cancer cell dissemination to distant organ sites and adaptation to the new microenvironment site. Unraveling the metastasis process can provide great insight into cancer death prevention or even treatment. Microfluidics is a promising platform, that provides a wide range of applications in metastasis-related investigations. Cell culture microfluidic technologies for in vitro modeling of cancer tissues with fluid flow and the presence of mechanical factors have led to the organ-on-a-chip platforms. Moreover, microfluidic systems have also been exploited for capturing and characterization of circulating tumor cells (CTCs) that provide crucial information on the metastatic behavior of a tumor. We present a comprehensive review of the recent developments in the application of microfluidics-based systems for analysis and understanding of the metastasis cascade from a wider perspective.
癌症长期以来一直是主要的死因。然而,在超过90%的病例中,原发性肿瘤并非主要死因。正是转移这一复杂过程使得癌症具有致命性。侵袭转移级联反应是癌细胞扩散至远处器官部位并适应新微环境部位的多步骤生物学过程。揭示转移过程能够为癌症死亡预防甚至治疗提供深刻见解。微流控技术是一个很有前景的平台,在与转移相关的研究中具有广泛应用。用于在流体流动和存在机械因素的情况下对癌组织进行体外建模的细胞培养微流控技术催生了芯片器官平台。此外,微流控系统还被用于捕获和表征循环肿瘤细胞(CTC),这些细胞提供了有关肿瘤转移行为的关键信息。我们从更广泛的角度对基于微流控系统在分析和理解转移级联反应方面的最新进展进行了全面综述。