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用于创建细胞网络的等离子体光刻表面图案化技术。

Plasma lithography surface patterning for creation of cell networks.

作者信息

Junkin Michael, Leung Siu Ling, Yang Yongliang, Lu Yi, Volmering Justin, Wong Pak Kin

机构信息

Aerospace and Mechanical Engineering, University of Arizona, USA.

出版信息

J Vis Exp. 2011 Jun 14(52):3115. doi: 10.3791/3115.

Abstract

Systematic manipulation of a cell microenvironment with micro- and nanoscale resolution is often required for deciphering various cellular and molecular phenomena. To address this requirement, we have developed a plasma lithography technique to manipulate the cellular microenvironment by creating a patterned surface with feature sizes ranging from 100 nm to millimeters. The goal of this technique is to be able to study, in a controlled way, the behaviors of individual cells as well as groups of cells and their interactions. This plasma lithography method is based on selective modification of the surface chemistry on a substrate by means of shielding the contact of low-temperature plasma with a physical mold. This selective shielding leaves a chemical pattern which can guide cell attachment and movement. This pattern, or surface template, can then be used to create networks of cells whose structure can mimic that found in nature and produces a controllable environment for experimental investigations. The technique is well suited to studying biological phenomenon as it produces stable surface patterns on transparent polymeric substrates in a biocompatible manner. The surface patterns last for weeks to months and can thus guide interaction with cells for long time periods which facilitates the study of long-term cellular processes, such as differentiation and adaption. The modification to the surface is primarily chemical in nature and thus does not introduce topographical or physical interference for interpretation of results. It also does not involve any harsh or toxic substances to achieve patterning and is compatible for tissue culture. Furthermore, it can be applied to modify various types of polymeric substrates, which due to the ability to tune their properties are ideal for and are widely used in biological applications. The resolution achievable is also beneficial, as isolation of specific processes such as migration, adhesion, or binding allows for discrete, clear observations at the single to multicell level. This method has been employed to form diverse networks of different cell types for investigations involving migration, signaling, tissue formation, and the behavior and interactions of neurons arraigned in a network.

摘要

为了解析各种细胞和分子现象,通常需要以微米和纳米级分辨率对细胞微环境进行系统操控。为满足这一需求,我们开发了一种等离子体光刻技术,通过创建特征尺寸从100纳米到毫米不等的图案化表面来操控细胞微环境。该技术的目标是能够以可控方式研究单个细胞以及细胞群体的行为及其相互作用。这种等离子体光刻方法基于通过物理模具屏蔽低温等离子体的接触,对基板表面化学进行选择性改性。这种选择性屏蔽留下一种化学图案,可引导细胞附着和移动。然后,这种图案或表面模板可用于创建细胞网络,其结构可模仿自然界中发现的结构,并为实验研究提供可控环境。该技术非常适合研究生物现象,因为它能以生物相容的方式在透明聚合物基板上产生稳定的表面图案。表面图案可持续数周甚至数月,从而能够长时间引导与细胞的相互作用,这有助于研究长期的细胞过程,如分化和适应。对表面的改性本质上主要是化学性质的,因此不会对结果解释引入地形或物理干扰。它也不涉及任何苛刻或有毒物质来实现图案化,并且与组织培养兼容。此外,它可应用于修饰各种类型的聚合物基板,由于能够调节其性质,这些基板非常适合并广泛用于生物应用。可实现的分辨率也很有益,因为对迁移、粘附或结合等特定过程的分离允许在单细胞到多细胞水平进行离散、清晰的观察。该方法已被用于形成不同细胞类型的各种网络,以进行涉及迁移、信号传导、组织形成以及排列在网络中的神经元的行为和相互作用的研究。

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