Park Joong Yull, Yoo Sung Ju, Hwang Chang Mo, Lee Sang-Hoon
Department of Biomedical Engineering, College of Health Science, Korea University, Jeongneung-dong, Seongbuk-gu, Seoul 136-703, Republic of Korea.
Lab Chip. 2009 Aug 7;9(15):2194-202. doi: 10.1039/b822006a. Epub 2009 Apr 27.
Cells are very sensitive to various microenvironmental cues, including mechanical stress and chemical gradients. Therefore, physiologically relevant models of cells should consider how cells sense and respond to microenvironmental cues. This can be accomplished by using microfluidic systems, in which fluid physics can be realized at a nanoliter scale. Here we describe a simple and versatile method to study the generation of chemical concentration and mechanical shear stress gradients in a single microfluidic chip. Our system uses an osmotic pump that produces very slow (<a few microm/s) and controlled flow, allowing a wide and stable diffusion of specific chemical concentration. We also established a shear stress gradient passively via a circular channel in the interstitial level. For evaluation of the system, we used L929 mouse fibroblast cells and simultaneously exposed them to a mechanical stress gradient and a chemical nutrient gradient. The interstitial shear stress level clearly affected cell alignment, mobility velocity, and attachment. At the same time, cell proliferation reflected nutrient concentration level. Our system, which enables continuous and long-term culture of cells in a combined chemical and mechanical gradient, provides physiologically realistic conditions and will be applicable to studies of cancer metastasis and stem cell differentiation.
细胞对各种微环境线索非常敏感,包括机械应力和化学梯度。因此,与生理相关的细胞模型应考虑细胞如何感知和响应微环境线索。这可以通过使用微流控系统来实现,在该系统中流体物理学可以在纳升尺度上实现。在此,我们描述了一种简单且通用的方法,用于研究单个微流控芯片中化学浓度和机械剪切应力梯度的产生。我们的系统使用一个渗透泵,该泵产生非常缓慢(<几微米/秒)且可控的流动,使得特定化学浓度能够广泛且稳定地扩散。我们还通过组织间隙水平的圆形通道被动地建立了一个剪切应力梯度。为了评估该系统,我们使用了L929小鼠成纤维细胞,并同时将它们暴露于机械应力梯度和化学营养梯度中。组织间隙剪切应力水平明显影响细胞排列、迁移速度和附着。同时,细胞增殖反映了营养浓度水平。我们的系统能够在化学和机械梯度组合的条件下对细胞进行连续和长期培养,提供了生理上逼真的条件,将适用于癌症转移和干细胞分化的研究。