Lee Jin-Ho, Luo Jeffrey, Choi Hye Kyu, Chueng Sy-Tsong Dean, Lee Ki-Bum, Choi Jeong-Woo
Department of Chemistry and Chemical Biology, Rutgers University, Piscataway, NJ 08854, USA.
Nanoscale. 2020 May 7;12(17):9306-9326. doi: 10.1039/c9nr10963c. Epub 2020 Feb 24.
Stem cells show excellent potential in the field of tissue engineering and regenerative medicine based on their excellent capability to not only self-renew but also differentiate into a specialized cell type of interest. However, the lack of a non-destructive monitoring system makes it challenging to identify and characterize differentiated cells before their transplantation without compromising cell viability. Thus, the development of a non-destructive monitoring method for analyzing cell function is highly desired and can significantly benefit stem cell-based therapies. Recently, nanomaterial-based scaffolds (e.g., nanoarrays) have made possible considerable advances in controlling the differentiation of stem cells and characterization of the differentiation status sensitively in real time. This review provides a selective overview of the recent progress in the synthesis methods of nanoarrays and their applications in controlling stem cell fate and monitoring live cell functions electrochemically. We believe that the topics discussed in this review can provide brief and concise guidelines for the development of novel nanoarrays and promote the interest in live cell study applications. A method which can not only control but also monitor stem cell fate and function will be a promising technology that can accelerate stem cell therapies.
基于干细胞不仅具有自我更新能力,还能分化为感兴趣的特定细胞类型的卓越能力,其在组织工程和再生医学领域展现出了巨大潜力。然而,缺乏一种非破坏性监测系统使得在不损害细胞活力的情况下,在移植前识别和表征分化细胞具有挑战性。因此,迫切需要开发一种用于分析细胞功能的非破坏性监测方法,这将极大地有益于基于干细胞的治疗。最近,基于纳米材料的支架(如纳米阵列)已使得在实时灵敏地控制干细胞分化和表征分化状态方面取得了相当大的进展。本综述选择性地概述了纳米阵列合成方法的最新进展及其在控制干细胞命运和电化学监测活细胞功能方面的应用。我们相信,本综述中讨论的主题可为新型纳米阵列的开发提供简要而简洁的指导方针,并激发对活细胞研究应用的兴趣。一种既能控制又能监测干细胞命运和功能的方法将是一项有前途的技术,能够加速干细胞治疗。