van Rijt Sabine, Habibovic Pamela
MERLN Institute for Technology-inspired Regenerative Medicine, Maastricht University, The Netherlands
MERLN Institute for Technology-inspired Regenerative Medicine, Maastricht University, The Netherlands.
J R Soc Interface. 2017 Apr;14(129). doi: 10.1098/rsif.2017.0093.
In this review, we discuss recent developments in the field of nanoparticles and their use in tissue regeneration approaches. Owing to their unique chemical properties and flexibility in design, nanoparticles can be used as drug delivery systems, to create novel features within materials or as bioimaging agents, or indeed these properties can be combined to create smart multifunctional structures. This review aims to provide an overview of this research field where the focus will be on nanoparticle-based strategies to stimulate bone regeneration; however, the same principles can be applied for other tissue and organ regeneration strategies. In the first section, nanoparticle-based methods for the delivery of drugs, growth factors and genetic material to promote tissue regeneration are discussed. The second section deals with the addition of nanoparticles to materials to create nanocomposites. Such materials can improve several material properties, including mechanical stability, biocompatibility and biological activity. The third section will deal with the emergence of a relatively new field of research using nanoparticles in advanced cell imaging and stem cell tracking approaches. As the development of nanoparticles continues, incorporation of this technology in the field of regenerative medicine will ultimately lead to new tools that can diagnose, track and stimulate the growth of new tissues and organs.
在本综述中,我们讨论了纳米颗粒领域的最新进展及其在组织再生方法中的应用。由于其独特的化学性质和设计灵活性,纳米颗粒可用作药物递送系统,在材料中创造新特性或用作生物成像剂,或者实际上可以将这些特性结合起来创造智能多功能结构。本综述旨在概述这一研究领域,重点将放在基于纳米颗粒的促进骨再生的策略上;然而,相同的原理也可应用于其他组织和器官再生策略。在第一部分中,讨论了基于纳米颗粒的药物、生长因子和遗传物质递送方法以促进组织再生。第二部分涉及向材料中添加纳米颗粒以形成纳米复合材料。此类材料可改善多种材料性能,包括机械稳定性、生物相容性和生物活性。第三部分将探讨在先进细胞成像和干细胞追踪方法中使用纳米颗粒这一相对较新的研究领域的出现。随着纳米颗粒的不断发展,将这项技术纳入再生医学领域最终将带来可诊断、追踪和刺激新组织和器官生长的新工具。