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聚苯乙烯作为细胞培养材料的演变。

The Evolution of Polystyrene as a Cell Culture Material.

机构信息

1 Department of Materials Science and Engineering, University of Maryland , College Park, Maryland.

2 Surface and Trace Chemical Analysis Group, Materials Measurement Lab, National Institute of Standards and Technology , Gaithersburg, Maryland.

出版信息

Tissue Eng Part B Rev. 2018 Oct;24(5):359-372. doi: 10.1089/ten.TEB.2018.0056.

Abstract

Polystyrene (PS) has brought in vitro cell culture from its humble beginnings to the modern era, propelling dozens of research fields along the way. This review discusses the development of the material, fabrication, and treatment approaches to create the culture material. However, native PS surfaces poorly facilitate cell adhesion and growth in vitro. To overcome this, liquid surface deposition, energetic plasma activation, and emerging functionalization methods transform the surface chemistry. This review seeks to highlight the many potential applications of the first widely accepted polymer growth surface. Although the majority of in vitro research occurs on two-dimensional surfaces, the importance of three-dimensional (3D) culture models cannot be overlooked. The methods to transition PS to specialized 3D culture surfaces are also reviewed. Specifically, casting, electrospinning, 3D printing, and microcarrier approaches to shift PS to a 3D culture surface are highlighted. The breadth of applications of the material makes it impossible to highlight every use, but the aim remains to demonstrate the versatility and potential as both a general and custom cell culture surface. The review concludes with emerging scaffolding approaches and, based on the findings, presents our insights on the future steps for PS as a tissue culture platform.

摘要

聚苯乙烯(PS)将体外细胞培养从起步阶段推进到了现代,在此过程中推动了数十个研究领域的发展。本文讨论了该材料的发展、制造和处理方法,以创造培养材料。然而,天然 PS 表面不利于细胞在体外的黏附和生长。为了克服这一问题,液体表面沉积、高能等离子体激活和新兴的功能化方法改变了表面化学性质。本文旨在强调这种最初被广泛接受的聚合物生长表面的许多潜在应用。尽管大多数体外研究都在二维表面上进行,但三维(3D)培养模型的重要性不容忽视。本文还综述了将 PS 转化为特殊 3D 培养表面的方法。具体而言,突出了用于将 PS 转移到 3D 培养表面的浇铸、静电纺丝、3D 打印和微载体方法。该材料的广泛应用使其不可能突出每一种用途,但目的仍然是展示其作为通用和定制细胞培养表面的多功能性和潜力。本文以新兴的支架方法作为结论,并根据研究结果提出了我们对 PS 作为组织培养平台的未来发展步骤的见解。

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