Department of Neurology , Northwestern University , Chicago , Illinois 60611 , United States.
ACS Nano. 2018 Dec 26;12(12):12118-12128. doi: 10.1021/acsnano.8b05473. Epub 2018 Nov 27.
Localized electroporation has evolved as an effective technology for the delivery of foreign molecules into cells while preserving their viability. Consequently, this technique has potential applications in sampling the contents of live cells and the temporal assessment of cellular states at the single-cell level. Although there have been numerous experimental reports on localized electroporation-based delivery, a lack of a mechanistic understanding of the process hinders its implementation in sampling. In this work, we develop a multiphysics model that predicts the transport of molecules into and out of the cell during localized electroporation. Based on the model predictions, we optimize experimental parameters such as buffer conditions, electric field strength, cell confluency, and density of nanochannels in the substrate for successful delivery and sampling via localized electroporation. We also identify that cell membrane tension plays a crucial role in enhancing both the amount and the uniformity of molecular transport, particularly for macromolecules. We qualitatively validate the model predictions on a localized electroporation platform by delivering large molecules (bovine serum albumin and mCherry-encoding plasmid) and by sampling an exogeneous protein (tdTomato) in an engineered cell line.
局部电穿孔已发展成为一种将外源分子递送入细胞而保持其活力的有效技术。因此,该技术在活细胞内容物的采样和单细胞水平上对细胞状态的时间评估方面具有潜在的应用。尽管已有许多关于基于局部电穿孔的递送来的实验报告,但对该过程的机制理解的缺乏阻碍了其在采样中的应用。在这项工作中,我们开发了一个多物理模型来预测在局部电穿孔过程中外源分子的入胞和出胞转运。基于模型预测,我们优化了实验参数,如缓冲条件、电场强度、细胞汇合度和基底中纳米通道的密度,以通过局部电穿孔成功地进行递送和采样。我们还发现细胞膜张力在增强大分子和小分子的转运量和均匀性方面起着至关重要的作用。我们通过在工程化细胞系中递送大分子(牛血清白蛋白和 mCherry 编码质粒)和采样外源性蛋白(tdTomato),在局部电穿孔平台上对模型预测进行了定性验证。