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Nanoscale tissue engineering: Spatial control over cell-materials interactions

机译:纳米级组织工程:细胞与材料相互作用的空间控制

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摘要

Cells interact with the surrounding environment by making tens to hundreds of thousands of nanoscale interactions with extracellular signals and features. The goal of nanoscale tissue engineering is to harness these interactions through nanoscale biomaterials engineering in order to study and direct cellular behavior. Here, we review two-and three-dimensional (2-and 3D) nanoscale tissue engineering technologies, and provide a holistic overview of the field. Techniques that can control the average spacing and clustering of cell adhesion ligands are well established and have been highly successful in describing cell adhesion and migration in 2D. Extension of these engineering tools to 3D biomaterials has created many new hydrogel and nanofiber scaffold technologies that are being used to design invitro experiments with more physiologically relevant conditions. Researchers are beginning to study complex cell functions in 3D. However, there is a need for biomaterials systems that provide fine control over the nanoscale presentation of bioactive ligands in 3D. Additionally, there is a need for 2-and 3D techniques that can control the nanoscale presentation of multiple bioactive ligands and that can control the temporal changes in the cellular microenvironment.
机译:细胞通过与细胞外信号和特征进行成千上万的纳米级相互作用,从而与周围环境相互作用。纳米级组织工程的目的是通过纳米级生物材料工程利用这些相互作用,以研究和指导细胞行为。在这里,我们回顾了二维和三维(2和3D)纳米级组织工程技术,并提供了该领域的整体概述。可以控制细胞粘附配体的平均间隔和聚类的技术已经建立,并且在描述2D细胞粘附和迁移方面非常成功。将这些工程工具扩展到3D生物材料已经创建了许多新的水凝胶和纳米纤维支架技术,这些技术被用于设计具有更多生理相关条件的体外实验。研究人员开始研究3D中复杂的细胞功能。然而,需要提供对3D中的生物活性配体的纳米级呈现进行精细控制的生物材料系统。另外,需要可以控制多种生物活性配体的纳米级呈递并且可以控制细胞微环境中的时间变化的2D和3D技术。

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