纳米结构工程在组织工程和再生医学中的应用

J. Borenstein, C. Bettinger
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引用次数: 0

摘要

纳米结构自然存在于许多组织的细胞外基质中,通过机械转导相互作用影响广泛的性质。合成细胞-纳米形貌相互作用作为一种控制细胞行为的方式,包括取向、粘附、迁移、增殖和细胞骨架组织。直到最近,这些过程已经在实验室研究中使用传统的细胞培养基质进行了探索,包括钛、玻璃、陶瓷、硅、聚苯乙烯和聚二甲基硅氧烷(PDMS),以及许多无序的纳米结构材料,如胶原蛋白。纳米化PDMS在体外研究中表现出独特的实用性,包括细胞-纳米形貌相互作用的基础研究,以及可以作为组织组织模板的结构。新兴研究正在探索适合植入的可生物降解基质上的纳米级机械转导,从而为开发具有可调机械和功能特性的工程组织铺平道路。本文描述了用于组织工程和再生医学的纳米级底物修饰的最新进展,重点是这些研究如何最终导致患者护理的先进方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Engineered nanotopographic structures for applications in tissue engineering and regenerative medicine
Nanotopographic structures occur naturally within the extracellular matrix of many tissues, influencing a wide range of properties through mechanotransductive interactions. Synthetic cell-nanotopography interactions have been explored as a way of controlling cell behaviors including orientation, adhesion, migration, proliferation and cytoskeletal organization. Until recently these processes have been explored using traditional cell culture substrates for laboratory investigations, including titanium, glass, ceramics, silicon, polystyrene and PolyDiMethylSiloxane (PDMS), as well as on numerous disordered nanostructured materials such as collagen. Nanopatterned PDMS exhibits unique utility for in vitro studies including fundamental studies on cell-nanotopography interactions as well as structures that can serve as template for tissue organization. Emerging research is exploring nanoscale mechanotransduction on biodegradable substrates suitable for implantation, thereby paving the way for the development of engineered tissues with tunable mechanical and functional properties. Here recent developments in nanoscale modification of substrates for tissue engineering and regenerative medicine are described, with an emphasis on how these studies might ultimately lead to advanced approaches for patient care.
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