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通过微流控技术洞察癌症转移的力学生物学

Insights into the mechanobiology of cancer metastasis via microfluidic technologies.

作者信息

Liang Lanfeng, Song Xiao, Zhao Hao, Lim Chwee Teck

机构信息

Mechanobiology Institute, National University of Singapore, Singapore.

Department of Biomedical Engineering, National University of Singapore, Singapore.

出版信息

APL Bioeng. 2024 Jun 3;8(2):021506. doi: 10.1063/5.0195389. eCollection 2024 Jun.

Abstract

During cancer metastasis, cancer cells will encounter various microenvironments with diverse physical characteristics. Changes in these physical characteristics such as tension, stiffness, viscosity, compression, and fluid shear can generate biomechanical cues that affect cancer cells, dynamically influencing numerous pathophysiological mechanisms. For example, a dense extracellular matrix drives cancer cells to reorganize their cytoskeleton structures, facilitating confined migration, while this dense and restricted space also acts as a physical barrier that potentially results in nuclear rupture. Identifying these pathophysiological processes and understanding their underlying mechanobiological mechanisms can aid in the development of more effective therapeutics targeted to cancer metastasis. In this review, we outline the advances of engineering microfluidic devices and their role in replicating tumor microenvironment to mimic settings. We highlight the potential cellular mechanisms that mediate their ability to adapt to different microenvironments. Meanwhile, we also discuss some important mechanical cues that still remain challenging to replicate in current microfluidic devices in future direction. While much remains to be explored about cancer mechanobiology, we believe the developments of microfluidic devices will reveal how these physical cues impact the behaviors of cancer cells. It will be crucial in the understanding of cancer metastasis, and potentially contributing to better drug development and cancer therapy.

摘要

在癌症转移过程中,癌细胞会遇到各种具有不同物理特性的微环境。这些物理特性的变化,如张力、硬度、粘度、压缩力和流体剪切力,会产生影响癌细胞的生物力学信号,动态影响众多病理生理机制。例如,致密的细胞外基质促使癌细胞重新组织其细胞骨架结构,促进受限迁移,而这种致密且受限的空间也作为一种物理屏障,可能导致细胞核破裂。识别这些病理生理过程并理解其潜在的机械生物学机制,有助于开发更有效的针对癌症转移的治疗方法。在本综述中,我们概述了工程微流控装置的进展及其在复制肿瘤微环境以进行模拟方面的作用。我们强调了介导其适应不同微环境能力的潜在细胞机制。同时,我们还讨论了一些在未来方向上仍难以在当前微流控装置中复制的重要机械信号。虽然关于癌症机械生物学仍有许多有待探索的地方,但我们相信微流控装置的发展将揭示这些物理信号如何影响癌细胞的行为。这对于理解癌症转移至关重要,并可能有助于更好地进行药物开发和癌症治疗。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea81/11151435/d1d28ed98b98/ABPID9-000008-021506_1-g001.jpg

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