State Key Laboratory of Optoelectronic Materials and Technologies, Guangdong Province Key Laboratory of Display Material and Technology, School of Electronics and Information, Technology, Sun Yat-sen University, Guangzhou 510006, China.
The First Affiliated Hospital, Sun Yat-sen University, Guangzhou 510080, China.
Biosensors (Basel). 2022 Jul 13;12(7):522. doi: 10.3390/bios12070522.
Cell perforation is a critical step for intracellular drug delivery and real-time biosensing of intracellular signals. In recent years, the nanostraws system has been developed to achieve intracellular drug delivery with minimal invasiveness to the cells. Repeated cell perforation via nano-system could allow delivery of multiple drugs into cells for cell editing, but the biosafety is rarely explored. In this work, a nanostraw-mediated nano-electroporation system was developed, which allowed repeated perforation of the same set of cells in a minimally invasive manner, while the biosafety aspect of this system was investigated. Highly controllable fabrication of AlO nanostraw arrays based on a porous polyethylene terephthalate (PET) membrane was integrated with a microfluidic device to construct the nanostraw-electroporation system. The pulse conditions and intervals of nano-electroporation were systematically optimized to achieve efficient cells perforation and maintain the viability of the cells. The cells proliferation, the early apoptosis activities after nanostraw-electroporation and the changes of gene functions and gene pathways of cells after repeated nano-electroporation were comprehensively analyzed. These results revealed that the repeated nanostraw-electroporation did not induce obvious negative effects on the cells. This work demonstrates the feasibility of repeated nano-electroporation on cells and provides a promising strategy for future biomedical applications.
细胞穿孔是细胞内药物输送和实时细胞内信号生物传感的关键步骤。近年来,纳米 straws 系统已被开发用于实现对细胞的最小侵入性的细胞内药物输送。通过纳米系统对细胞进行重复穿孔可以将多种药物输送到细胞中进行细胞编辑,但生物安全性很少被探索。在这项工作中,开发了一种纳米 straw 介导的纳米电穿孔系统,该系统可以以最小的侵入性方式对同一组细胞进行重复穿孔,同时研究了该系统的生物安全性。基于多孔聚对苯二甲酸乙二醇酯 (PET) 膜的 AlO 纳米 straw 阵列的高度可控制造与微流控装置集成,构建了纳米 straw 电穿孔系统。系统地优化了电穿孔的脉冲条件和间隔,以实现高效的细胞穿孔并保持细胞的活力。综合分析了细胞增殖、纳米 straw 电穿孔后的早期细胞凋亡活性以及重复纳米电穿孔后细胞基因功能和基因途径的变化。这些结果表明,重复的纳米 straw 电穿孔对细胞没有明显的负面影响。这项工作证明了对细胞进行重复纳米电穿孔的可行性,并为未来的生物医学应用提供了有前途的策略。