Literature DB >> 22516092

Low-frequency ac electroporation shows strong frequency dependence and yields comparable transfection results to dc electroporation.

Yihong Zhan1, Zhenning Cao, Ning Bao, Jianbo Li, Jun Wang, Tao Geng, Hao Lin, Chang Lu.   

Abstract

Conventional electroporation has been conducted by employing short direct current (dc) pulses for delivery of macromolecules such as DNA into cells. The use of alternating current (ac) field for electroporation has mostly been explored in the frequency range of 10kHz-1MHz. Based on Schwan equation, it was thought that with low ac frequencies (10Hz-10kHz), the transmembrane potential does not vary with the frequency. In this report, we utilized a flow-through electroporation technique that employed continuous 10Hz-10kHz ac field (based on either sine waves or square waves) for electroporation of cells with defined duration and intensity. Our results reveal that electropermeabilization becomes weaker with increased frequency in this range. In contrast, transfection efficiency with DNA reaches its maximum at medium frequencies (100-1000Hz) in the range. We postulate that the relationship between the transfection efficiency and the ac frequency is determined by combined effects from electrophoretic movement of DNA in the ac field, dependence of the DNA/membrane interaction on the ac frequency, and variation of transfection under different electropermeabilization intensities. The fact that ac electroporation in this frequency range yields high efficiency for transfection (up to ~71% for Chinese hamster ovary cells) and permeabilization suggests its potential for gene delivery.
Copyright © 2012 Elsevier B.V. All rights reserved.

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Year:  2012        PMID: 22516092     DOI: 10.1016/j.jconrel.2012.04.006

Source DB:  PubMed          Journal:  J Control Release        ISSN: 0168-3659            Impact factor:   9.776


  17 in total

1.  Multifunctional, inexpensive, and reusable nanoparticle-printed biochip for cell manipulation and diagnosis.

Authors:  Rahim Esfandyarpour; Matthew J DiDonato; Yuxin Yang; Naside Gozde Durmus; James S Harris; Ronald W Davis
Journal:  Proc Natl Acad Sci U S A       Date:  2017-02-06       Impact factor: 11.205

2.  Micro-/nanofluidics based cell electroporation.

Authors:  Shengnian Wang; L James Lee
Journal:  Biomicrofluidics       Date:  2013-01-07       Impact factor: 2.800

3.  Scaling relationship and optimization of double-pulse electroporation.

Authors:  Mohamed M Sadik; Miao Yu; Mingde Zheng; Jeffrey D Zahn; Jerry W Shan; David I Shreiber; Hao Lin
Journal:  Biophys J       Date:  2014-02-18       Impact factor: 4.033

4.  Continuous-flow multi-pulse electroporation at low DC voltages by microfluidic flipping of the voltage space topology.

Authors:  N Bhattacharjee; L F Horowitz; A Folch
Journal:  Appl Phys Lett       Date:  2016-10-17       Impact factor: 3.791

5.  Highly efficient genome editing of human hematopoietic stem cells via a nano-silicon-blade delivery approach.

Authors:  Yuan Ma; Xin Han; Oscar Quintana Bustamante; Ricardo Bessa de Castro; Kai Zhang; Pengchao Zhang; Ying Li; Zongbin Liu; Xuewu Liu; Mauro Ferrari; Zhongbo Hu; José Carlos Segovia; Lidong Qin
Journal:  Integr Biol (Camb)       Date:  2017-06-19       Impact factor: 2.192

Review 6.  Physical methods for intracellular delivery: practical aspects from laboratory use to industrial-scale processing.

Authors:  J Mark Meacham; Kiranmai Durvasula; F Levent Degertekin; Andrei G Fedorov
Journal:  J Lab Autom       Date:  2013-06-27

Review 7.  Microfluidic electroporation for cellular analysis and delivery.

Authors:  Tao Geng; Chang Lu
Journal:  Lab Chip       Date:  2013-10-07       Impact factor: 6.799

8.  Microfluidic device for stem cell differentiation and localized electroporation of postmitotic neurons.

Authors:  Wonmo Kang; Juan P Giraldo-Vela; S Shiva P Nathamgari; Tammy McGuire; Rebecca L McNaughton; John A Kessler; Horacio D Espinosa
Journal:  Lab Chip       Date:  2014-09-10       Impact factor: 6.799

9.  3D-printing enabled micro-assembly of a microfluidic electroporation system for 3D tissue engineering.

Authors:  Qingfu Zhu; Megan Hamilton; Bryan Vasquez; Mei He
Journal:  Lab Chip       Date:  2019-07-09       Impact factor: 6.799

Review 10.  Permeabilizing Cell Membranes with Electric Fields.

Authors:  Alondra A Aguilar; Michelle C Ho; Edwin Chang; Kristen W Carlson; Arutselvan Natarajan; Tal Marciano; Ze'ev Bomzon; Chirag B Patel
Journal:  Cancers (Basel)       Date:  2021-05-10       Impact factor: 6.639

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