College of Pharmaceutical Sciences, Zhejiang University, Hangzhou, 310058, China.
Dr. Li Dak Sum & Yip Yio Chin Center for Stem Cell and Regenerative Medicine, Zhejiang University, Hangzhou, 310058, China.
Small. 2020 Sep;16(37):e2001588. doi: 10.1002/smll.202001588. Epub 2020 Jul 28.
Gene delivery to stem cells is a critical issue of stem cells-based therapies, still facing ongoing challenges regarding efficiency and safety. Recent advances in the controlled synthesis of biocompatible magnetic iron oxide nanoparticles (IONPs) have provided a powerful nanotool for assisting gene delivery to stem cells. However, this field is still at an early stage, with well-designed and scalable IONPs synthesis highly desired. Furthermore, the potential risks or bioeffects of IONPs on stem cells are not completely figured out. Therefore, in this review, the updated researches focused on the gene delivery to stem cells using various designed IONPs are highlighted. Additionally, the impacts of the physicochemical properties of IONPs, as well as the magnetofection systems on the gene delivery performance and biocompatibility are summarized. Finally, challenges attributed to the potential impacts of IONPs on the biologic behaviors of stem cells and the large-scale productions of uniform IONPs are emphasized. The principles and challenges summarized in this review provide a general guidance for the rational design of IONPs-assisted gene delivery to stem cells.
将基因递送到干细胞是基于干细胞的治疗的一个关键问题,其仍然面临着关于效率和安全性的持续挑战。最近在生物相容性磁性氧化铁纳米粒子(IONP)的控制合成方面的进展为辅助干细胞的基因递送提供了一个强大的纳米工具。然而,该领域仍处于早期阶段,非常需要设计良好且可扩展的 IONP 合成。此外,IONP 对干细胞的潜在风险或生物效应尚未完全阐明。因此,在这篇综述中,重点强调了使用各种设计的 IONP 进行干细胞基因递送的最新研究。此外,还总结了 IONP 的物理化学性质以及磁转染系统对基因递送性能和生物相容性的影响。最后,强调了 IONP 对干细胞的生物学行为和均匀 IONP 的大规模生产的潜在影响所带来的挑战。本综述中总结的原则和挑战为基于 IONP 的辅助基因递送到干细胞的合理设计提供了一般性指导。