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Decoupling Polymer Properties to Elucidate Mechanisms Governing Cell Behavior

机译:解耦聚合物特性以阐明控制细胞行为的机制

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摘要

Determining how a biomaterial interacts with cells (“structure-function relationship”) reflects its eventual clinical applicability. Therefore, a fundamental understanding of how individual material properties modulate cell-biomaterial interactions is pivotal to improving the efficacy and safety of clinically translatable biomaterial systems. However, due to the coupled nature of material properties, their individual effects on cellular responses are difficult to understand. Structure-function relationships can be more clearly understood by the effective decoupling of each individual parameter. In this article, we discuss three basic decoupling strategies: (1) surface modification, (2) cross-linking, and (3) combinatorial approaches (i.e., copolymerization and polymer blending). Relevant examples of coupled material properties are briefly reviewed in each section to highlight the need for improved decoupling methods. This follows with examples of more effective decoupling techniques, mainly from the perspective of three primary classes of synthetic materials: polyesters, polyethylene glycol, and polyacrylamide. Recent strides in decoupling methodologies, especially surface-patterning and combinatorial techniques, offer much promise in further understanding the structure-function relationships that largely govern the success of future advancements in biomaterials, tissue engineering, and drug delivery.
机译:确定生物材料如何与细胞相互作用(“结构-功能关系”)反映了其最终的临床适用性。因此,对单个材料特性如何调节细胞-生物材料相互作用的基本理解对于提高临床可翻译生物材料系统的功效和安全性至关重要。但是,由于材料特性的耦合性质,它们对细胞反应的个别影响很难理解。通过有效分离每个参数,可以更清楚地了解结构-功能关系。在本文中,我们讨论了三种基本的去耦策略:(1)表面改性,(2)交联和(3)组合方法(即共聚和聚合物共混)。在每个部分中简要回顾了耦合材料特性的相关示例,以强调对改进的去耦方法的需求。以下是更有效的去耦技术的示例,主要是从三大类合成材料的角度来看:聚酯,聚乙二醇和聚丙烯酰胺。去耦方法,特别是表面图案和组合技术的最新进展,为进一步理解结构功能关系提供了很大的希望,这些关系在很大程度上决定着生物材料,组织工程和药物输送领域未来发展的成功。

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