Shin Heungsoo
Department of Bioengineering, Hanyang University, 17 Haengdang-dong, Seongdong-gu, Seoul 133 791, Republic of Korea.
Biomaterials. 2007 Jan;28(2):126-33. doi: 10.1016/j.biomaterials.2006.08.007. Epub 2006 Aug 30.
Success in tissue engineering requires an understanding of how cells integrate the signals presented from the microenvironment created by biomaterial scaffolds to alter their responses. Besides the presence of chemical stimuli, there is growing evidence that the spatial organization of cells and tissue within a 3-dimensional (3-D) extracellular matrix (ECM) context is a critical element in controlling cellular function. Therefore, in order to direct cells toward a desirable tissue structure, it is necessary to engineer biomaterials to have spatiotemporal control of the presentation of regulatory signals. Given that, micro-patterning techniques have profited by combining micro-fabrication technology with the chemical conjugation of biologically active molecules to provide new culture systems where cells can be cultured within a specific geometry. The micro-engineered environments have been developed as 2- and 3-D structures, which have proven greatly useful as versatile platforms to study cell, biomaterial, and ECM interactions on both macroscopic and microscopic levels. The main focus of this review is a brief summary of the use of micro-engineered substrates in the analysis of cell-biomaterial interactions with the aim to provide an introductory overview of practical applications available in the literature. In particular, topics regarding (1) the soft-lithography technique to prepare micro-patterned substrates for the spatial control of cell adhesion, (2) biomaterials stiffness-dependent cellular responses, and (3) the microarray techniques for analysis of cell/biomaterials interactions are discussed.
组织工程的成功需要了解细胞如何整合生物材料支架所创造的微环境呈现的信号,以改变其反应。除了化学刺激的存在外,越来越多的证据表明,在三维(3-D)细胞外基质(ECM)环境中细胞和组织的空间组织是控制细胞功能的关键因素。因此,为了引导细胞形成理想的组织结构,有必要设计生物材料,使其对调节信号的呈现具有时空控制能力。鉴于此,微图案化技术通过将微制造技术与生物活性分子的化学偶联相结合而受益,从而提供了新的培养系统,在该系统中细胞可以在特定几何形状内进行培养。微工程环境已被开发为二维和三维结构,事实证明,它们作为通用平台在宏观和微观层面研究细胞、生物材料和ECM相互作用方面非常有用。本综述的主要重点是简要总结微工程基质在细胞-生物材料相互作用分析中的应用,旨在提供文献中可用实际应用的介绍性概述。特别是,讨论了以下主题:(1)用于制备用于细胞粘附空间控制的微图案化基质的软光刻技术,(2)生物材料刚度依赖性细胞反应,以及(3)用于分析细胞/生物材料相互作用的微阵列技术。