Polymers Division, National Institute of Standards and Technology, 100 Bureau Dr., Gaithersburg, MD 29899, USA.
Adv Mater. 2011 Jan 18;23(3):369-87. doi: 10.1002/adma.201001763. Epub 2010 Sep 13.
Combinatorial and high-throughput methods have been increasingly used to accelerate research and development of new biomaterials. These methods involve creating miniaturized libraries that contain many specimens in one sample in the form of gradients or arrays, followed by automated data collection and analysis. This article reviews recent advances in utilizing combinatorial and high-throughput methods to better understand cell-material interactions, particularly highlighting our efforts at the NIST Polymers Division. Specifically, fabrication techniques to generate controlled surfaces (2D) and 3D cell environments (tissue engineering scaffolds) as well as methods to characterize and analyze material properties and cell-material interactions are described. In conclusion, additional opportunities for combinatorial methods for biomaterials research are noted, including streamlined sample fabrication and characterization, appropriate and automated bioassays, and data analysis.
组合和高通量方法已被越来越多地用于加速新生物材料的研究和开发。这些方法涉及创建微型文库,其中在一个样品中以梯度或阵列的形式包含许多样本,然后进行自动数据收集和分析。本文综述了利用组合和高通量方法来更好地理解细胞-材料相互作用的最新进展,特别是强调了我们在 NIST 聚合物分部的努力。具体来说,描述了用于生成受控表面(2D)和 3D 细胞环境(组织工程支架)的制造技术,以及用于表征和分析材料特性和细胞-材料相互作用的方法。总之,指出了用于生物材料研究的组合方法的更多机会,包括简化的样品制造和表征、适当和自动化的生物测定以及数据分析。