Biomicrofluidics. 2008 Sep 17;2(3):34106. doi: 10.1063/1.2988313.
Studies on the effects of variations in temperature and mild temperature gradients on cells, gels, and scaffolds are important from the viewpoint of biological function. Small differences in temperature are known to elicit significant variations in cell behavior and individual protein reactivity. For the study of thermal effects and gradients in vitro, it is important to develop microfluidic platforms which are capable of controlling temperature gradients in an environment which mimics the range of physiological conditions. In the present paper, such a microfluidic thermal gradient system (muTGS) system is proposed which can create and maintain a thermal gradient throughout a cell-seeded gel matrix using the hot and cold water supply integrated in the system in the form of a countercurrent heat exchanger. It is found that a uniform temperature gradient can be created and maintained in the device even inside a high temperature and high humidity environment of an incubator. With the help of a hot and cold circuit controlled from outside the incubator the temperature gradient can be regulated. A numerical simulation of the device demonstrates the thermal feature of the chip. Cell viability and activity under a thermal gradient are examined by placing human breast cancer cells in the device.
从生物学功能的角度来看,研究温度和温和温度梯度变化对细胞、凝胶和支架的影响非常重要。已知微小的温度差异会引起细胞行为和单个蛋白质反应的显著变化。为了在体外研究热效应和梯度,开发能够在模拟生理条件范围的环境中控制温度梯度的微流控平台非常重要。在本文中,提出了一种微流控热梯度系统(muTGS),该系统可以使用集成在系统中的冷热水供应以逆流换热器的形式在细胞接种凝胶基质中创建和维持热梯度。即使在孵育箱的高温高湿环境中,也可以在设备内创建和维持均匀的温度梯度。借助于从孵育箱外部控制的冷热回路,可以调节温度梯度。通过对器件的热特性进行数值模拟,证明了该器件的热特性。通过将人乳腺癌细胞置于该装置中,研究了细胞在热梯度下的活力和活性。