Luo Chunxiong, Li Hao, Xiong Chunyang, Peng Xiaoling, Kou Qingli, Chen Yong, Ji Hang, Ouyang Qi
Center for Microfluidic and Nanotechnology, Peking University, Beijing, 100871, China.
Biomed Microdevices. 2007 Aug;9(4):573-8. doi: 10.1007/s10544-007-9066-2.
A microfluidic device combined with the microwell array and optical tweezers was set up for cell manipulation, localization and cultivation. Yeast cells were manipulated by a 1,064 nm laser and transferred to microwell array as a demonstration. The flow velocities at which the yeast cell can be confined in microwells of different sizes are characterized. The simulation of the cell's flow trace in the microwell at different flow velocities is consisting with our experiment result. And we also proved a trapping laser power of 0.30 W is harmless for yeast cell cultivation. As a simple approach, this method can push forward the cell cultivation, cell interaction and other cell biology or biomedical studies in microfluidic system.
搭建了一种结合微孔阵列和光镊的微流控装置用于细胞操作、定位和培养。以1064 nm激光操纵酵母细胞并将其转移至微孔阵列作为演示。表征了酵母细胞能够被限制在不同尺寸微孔中的流速。对不同流速下细胞在微孔中的流动轨迹进行的模拟与我们的实验结果相符。并且我们还证明了0.30 W的捕获激光功率对酵母细胞培养无害。作为一种简单的方法,该方法能够推动微流控系统中的细胞培养、细胞相互作用以及其他细胞生物学或生物医学研究。