Nan Xueli, Zhang Jiale, Wang Xin, Kang Tongtong, Cao Xinxin, Hao Jinjin, Jia Qikun, Qin Bolin, Mei Shixuan, Xu Zhikuan
School of Automation and Software Engineering, Shanxi University, Taiyuan 030006, China.
School of Biomedical Engineering, Shanghai Jiao Tong University, Shanghai 200030, China.
Micromachines (Basel). 2023 Aug 5;14(8):1561. doi: 10.3390/mi14081561.
Dielectrophoresis technology is applied to microfluidic chips to achieve microscopic control of cells. Currently, microfluidic chips based on dielectrophoresis have certain limitations in terms of cell sorting species, in order to explore a microfluidic chip with excellent performance and high versatility. In this paper, we designed a microfluidic chip that can be used for continuous cell sorting, with the structural design of a curved channel and curved double side electrodes. CM factors were calculated for eight human healthy blood cells and cancerous cells using the software MyDEP, the simulation of various blood cells sorting and the simulation of the joule heat effect of the microfluidic chip were completed using the software COMSOL Multiphysics. The effect of voltage and inlet flow velocity on the simulation results was discussed using the control variables method. We found feasible parameters from simulation results under different voltages and inlet flow velocities, and the feasibility of the design was verified from multiple perspectives by measuring cell movement trajectories, cell recovery rate and separation purity. This paper provides a universal method for cell, particle and even protein sorting.
介电泳技术应用于微流控芯片以实现对细胞的微观控制。目前,基于介电泳的微流控芯片在细胞分选种类方面存在一定局限性,为了探索一种具有优异性能和高通用性的微流控芯片。本文设计了一种可用于连续细胞分选的微流控芯片,采用弯曲通道和弯曲双侧电极的结构设计。使用软件MyDEP计算了八种人类健康血细胞和癌细胞的CM因子,使用软件COMSOL Multiphysics完成了各种血细胞分选的模拟以及微流控芯片焦耳热效应的模拟。采用控制变量法讨论了电压和入口流速对模拟结果的影响。我们从不同电压和入口流速下的模拟结果中找到了可行的参数,并通过测量细胞运动轨迹、细胞回收率和分离纯度从多个角度验证了设计的可行性。本文提供了一种用于细胞、颗粒甚至蛋白质分选的通用方法。