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循环剪切流会改变循环中结肠癌细胞的活力和增殖能力。

Circulatory shear flow alters the viability and proliferation of circulating colon cancer cells.

作者信息

Fan Rong, Emery Travis, Zhang Yongguo, Xia Yuxuan, Sun Jun, Wan Jiandi

机构信息

Microsystems Engineering, Rochester Institute of Technology, Rochester, New York, USA.

Department of Mechanical Engineering, Rochester Institute of Technology, Rochester, New York, USA.

出版信息

Sci Rep. 2016 Jun 3;6:27073. doi: 10.1038/srep27073.

Abstract

During cancer metastasis, circulating tumor cells constantly experience hemodynamic shear stress in the circulation. Cellular responses to shear stress including cell viability and proliferation thus play critical roles in cancer metastasis. Here, we developed a microfluidic approach to establish a circulatory microenvironment and studied circulating human colon cancer HCT116 cells in response to a variety of magnitude of shear stress and circulating time. Our results showed that cell viability decreased with the increase of circulating time, but increased with the magnitude of wall shear stress. Proliferation of cells survived from circulation could be maintained when physiologically relevant wall shear stresses were applied. High wall shear stress (60.5 dyne/cm(2)), however, led to decreased cell proliferation at long circulating time (1 h). We further showed that the expression levels of β-catenin and c-myc, proliferation regulators, were significantly enhanced by increasing wall shear stress. The presented study provides a new insight to the roles of circulatory shear stress in cellular responses of circulating tumor cells in a physiologically relevant model, and thus will be of interest for the study of cancer cell mechanosensing and cancer metastasis.

摘要

在癌症转移过程中,循环肿瘤细胞在循环系统中不断受到血流动力学剪切应力的作用。细胞对剪切应力的反应,包括细胞活力和增殖,因此在癌症转移中起着关键作用。在这里,我们开发了一种微流控方法来建立循环微环境,并研究了循环中的人结肠癌细胞HCT116对不同大小的剪切应力和循环时间的反应。我们的结果表明,细胞活力随着循环时间的增加而降低,但随着壁面剪切应力的大小而增加。当施加生理相关的壁面剪切应力时,循环后存活细胞的增殖可以维持。然而,高壁面剪切应力(60.5达因/平方厘米)在长时间循环(1小时)时会导致细胞增殖减少。我们进一步表明,增殖调节因子β-连环蛋白和c-myc的表达水平通过增加壁面剪切应力而显著增强。本研究为循环剪切应力在生理相关模型中对循环肿瘤细胞的细胞反应中的作用提供了新的见解,因此将对癌细胞机械传感和癌症转移的研究具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/bee2/4891768/767de1ddb46c/srep27073-f1.jpg

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