Md Ali Mohd Anuar, Kayani Aminuddin Bin Ahmad, Yeo Leslie Y, Chrimes Adam F, Ahmad Muhammad Zamharir, Ostrikov Kostya Ken, Majlis Burhanuddin Yeop
Institute of Microengineering and Nanoelectronics, Universiti Kebangsaan Malaysia, 43600, Bangi, Selangor, Malaysia.
Centre for Advanced Materials and Green Technology, Faculty of Engineering and Technology, Multimedia University, 75450, Melaka, Malaysia.
Biomed Microdevices. 2018 Nov 6;20(4):95. doi: 10.1007/s10544-018-0341-1.
Cell contact formation, which is the process by which cells are brought into close proximity is an important biotechnological process in cell and molecular biology. Such manipulation is achieved by various means, among which dielectrophoresis (DEP) is widely used due to its simplicity. Here, we show the advantages in the judicious choice of the DEP microelectrode configuration in terms of limiting undesirable effects of dielectric heating on the cells, which could lead to their inactivation or death, as well as the possibility for cell clustering, which is particularly advantageous over the linear cell chain arrangement typically achieved to date with DEP. This study comprises of experimental work as well as mathematical modeling using COMSOL. In particular, we establish the parameters in a capillary-based microfluidic system giving rise to these optimum cell-cell contact configurations, together with the possibility for facilitating other cell manipulations such as spinning and rotation, thus providing useful protocols for application into microfluidic bioparticle manipulation systems for diagnostics, therapeutics or for furthering research in cellular bioelectricity and intercellular interactions.
细胞接触形成是细胞彼此靠近的过程,是细胞与分子生物学中一个重要的生物技术过程。这种操作可通过多种方式实现,其中介电泳(DEP)因其简便性而被广泛应用。在此,我们展示了在介电泳微电极配置的明智选择方面的优势,这体现在限制介电加热对细胞的不良影响(这可能导致细胞失活或死亡)以及细胞聚集的可能性上,细胞聚集相对于迄今通常通过介电泳实现的线性细胞链排列具有特别的优势。本研究包括实验工作以及使用COMSOL进行的数学建模。特别是,我们在基于毛细管的微流控系统中确定了产生这些最佳细胞 - 细胞接触配置的参数,以及促进其他细胞操作(如旋转)的可能性,从而为应用于诊断、治疗的微流控生物颗粒操纵系统或推进细胞生物电和细胞间相互作用的研究提供有用的方案。