Guo Feng, Li Peng, French Jarrod B, Mao Zhangming, Zhao Hong, Li Sixing, Nama Nitesh, Fick James R, Benkovic Stephen J, Huang Tony Jun
Department of Engineering Science and Mechanics, The Pennsylvania State University, University Park, PA 16802;
Department of Chemistry, The Pennsylvania State University, University Park, PA 16802;
Proc Natl Acad Sci U S A. 2015 Jan 6;112(1):43-8. doi: 10.1073/pnas.1422068112. Epub 2014 Dec 22.
The interactions between pairs of cells and within multicellular assemblies are critical to many biological processes such as intercellular communication, tissue and organ formation, immunological reactions, and cancer metastasis. The ability to precisely control the position of cells relative to one another and within larger cellular assemblies will enable the investigation and characterization of phenomena not currently accessible by conventional in vitro methods. We present a versatile surface acoustic wave technique that is capable of controlling the intercellular distance and spatial arrangement of cells with micrometer level resolution. This technique is, to our knowledge, among the first of its kind to marry high precision and high throughput into a single extremely versatile and wholly biocompatible technology. We demonstrated the capabilities of the system to precisely control intercellular distance, assemble cells with defined geometries, maintain cellular assemblies in suspension, and translate these suspended assemblies to adherent states, all in a contactless, biocompatible manner. As an example of the power of this system, this technology was used to quantitatively investigate the gap junctional intercellular communication in several homotypic and heterotypic populations by visualizing the transfer of fluorescent dye between cells.
细胞对之间以及多细胞集合体内的相互作用对于许多生物学过程至关重要,如细胞间通讯、组织和器官形成、免疫反应以及癌症转移。精确控制细胞彼此之间以及在更大细胞集合体内的位置的能力,将有助于研究和表征目前传统体外方法无法触及的现象。我们提出了一种通用的表面声波技术,该技术能够以微米级分辨率控制细胞间距离和细胞的空间排列。据我们所知,这项技术是首批将高精度和高通量结合到一种极其通用且完全生物相容的单一技术中的技术之一。我们展示了该系统以非接触、生物相容的方式精确控制细胞间距离、组装具有特定几何形状的细胞、使细胞集合体保持悬浮状态以及将这些悬浮集合体转变为粘附状态的能力。作为该系统强大功能的一个例子,这项技术被用于通过可视化荧光染料在细胞间的转移,定量研究几个同型和异型群体中的间隙连接细胞间通讯。