Powell Rebecca, Eleftheriadou Despoina, Kellaway Simon, Phillips James B
UCL Centre for Nerve Engineering, University College London, London, United Kingdom.
Department of Pharmacology, UCL School of Pharmacy, University College London, London, United Kingdom.
Front Bioeng Biotechnol. 2021 May 25;9:674473. doi: 10.3389/fbioe.2021.674473. eCollection 2021.
Nerve tissue function and regeneration depend on precise and well-synchronised spatial and temporal control of biological, physical, and chemotactic cues, which are provided by cellular components and the surrounding extracellular matrix. Therefore, natural biomaterials currently used in peripheral nerve tissue engineering are selected on the basis that they can act as instructive extracellular microenvironments. Despite emerging knowledge regarding cell-matrix interactions, the exact mechanisms through which these biomaterials alter the behaviour of the host and implanted cells, including neurons, Schwann cells and immune cells, remain largely unclear. Here, we review some of the physical processes by which natural biomaterials mimic the function of the extracellular matrix and regulate cellular behaviour. We also highlight some representative cases of controllable cell microenvironments developed by combining cell biology and tissue engineering principles.
神经组织的功能和再生取决于生物、物理和趋化信号在空间和时间上精确且同步良好的控制,这些信号由细胞成分和周围的细胞外基质提供。因此,目前用于周围神经组织工程的天然生物材料是基于它们可作为具有指导作用的细胞外微环境这一特性而被选择的。尽管关于细胞与基质相互作用的知识不断涌现,但这些生物材料改变宿主细胞和植入细胞(包括神经元、雪旺细胞和免疫细胞)行为的确切机制仍 largely不清楚。在此,我们综述了天然生物材料模拟细胞外基质功能并调节细胞行为的一些物理过程。我们还重点介绍了通过结合细胞生物学和组织工程原理开发的可控细胞微环境的一些代表性案例。