Literature DB >> 23128984

A theoretical study of single-cell electroporation in a microchannel.

Saeid Movahed1, Dongqing Li.   

Abstract

Electroporation of a single cell in a microchannel was studied. The effects of electrical (e.g., strength of the electric pulse) and geometrical (e.g., microchannel height, electrode size and position) parameters on cell membrane permeabilization were investigated. The electrodes were assumed to be embedded in the walls of the microchannel; the cell was suspended between these two electrodes. By keeping the electric pulse constant, increasing the microchannel height reduces the number and the radius of the biggest nanopores, as well as the electroporated area of the cell membrane. If the width of the electrodes is bigger than the cell diameter, the transmembrane potential will be centralized and have a sinusoidal distribution around the cell if nanopores are not generated. As the width of the electrode decreases and becomes smaller than the cell diameter, the local transmembrane potential decreases; in the nonelectroporative area, the transmembrane potential distribution deviates from the sinusoidal behavior; the induced transmembrane potential also concentrates around the poles of the cell membrane (the nearest points of the cell membrane to the electrodes). During cell membrane permeabilization, the biggest nanopores are initially created at the poles and then the nanopore population expands toward the equator. The number of the created nanopores reaches its maximal value within a few microseconds; further presence of the electric pulse may not influence the number and location of the created nanopores anymore but will develop the generated nanopores. Strengthening the electric pulse intensifies the size and number of the created nanopores as well as the electroporated area on the cell membrane.

Mesh:

Year:  2012        PMID: 23128984     DOI: 10.1007/s00232-012-9515-6

Source DB:  PubMed          Journal:  J Membr Biol        ISSN: 0022-2631            Impact factor:   1.843


  31 in total

1.  Modeling electroporation in a single cell. II. Effects Of ionic concentrations.

Authors:  K A DeBruin; W Krassowska
Journal:  Biophys J       Date:  1999-09       Impact factor: 4.033

2.  Modeling electroporation in a single cell. I. Effects Of field strength and rest potential.

Authors:  K A DeBruin; W Krassowska
Journal:  Biophys J       Date:  1999-09       Impact factor: 4.033

3.  A single cell electroporation chip.

Authors:  Michelle Khine; Adrian Lau; Cristian Ionescu-Zanetti; Jeonggi Seo; Luke P Lee
Journal:  Lab Chip       Date:  2004-09-22       Impact factor: 6.799

4.  Gene transfection of mammalian cells using membrane sandwich electroporation.

Authors:  Zhengzheng Fei; Shengnian Wang; Yubing Xie; Brian E Henslee; Chee Guan Koh; L James Lee
Journal:  Anal Chem       Date:  2007-06-29       Impact factor: 6.986

Review 5.  Single-cell electroporation.

Authors:  Manyan Wang; Owe Orwar; Jessica Olofsson; Stephen G Weber
Journal:  Anal Bioanal Chem       Date:  2010-05-23       Impact factor: 4.142

6.  Microfluidic electroporation of tumor and blood cells: observation of nucleus expansion and implications on selective analysis and purging of circulating tumor cells.

Authors:  Ning Bao; Thuc T Le; Ji-Xin Cheng; Chang Lu
Journal:  Integr Biol (Camb)       Date:  2010-01-05       Impact factor: 2.192

7.  Electrokinetic transport through nanochannels.

Authors:  Saeid Movahed; Dongqing Li
Journal:  Electrophoresis       Date:  2011-05-03       Impact factor: 3.535

8.  Gene transfer and protein dynamics in stem cells using single cell electroporation in a microfluidic device.

Authors:  A Valero; J N Post; J W van Nieuwkasteele; P M Ter Braak; W Kruijer; A van den Berg
Journal:  Lab Chip       Date:  2007-11-26       Impact factor: 6.799

9.  Semicontinuous flow electroporation chip for high-throughput transfection on mammalian cells.

Authors:  Shengnian Wang; Xulang Zhang; Weixiong Wang; L James Lee
Journal:  Anal Chem       Date:  2009-06-01       Impact factor: 6.986

10.  Numerical study of the electroporation pulse shape effect on molecular uptake of biological cells.

Authors:  Damijan Miklavcic; Leila Towhidi
Journal:  Radiol Oncol       Date:  2010-03-18       Impact factor: 2.991

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  5 in total

1.  Theoretical Study of Molecular Transport Through a Permeabilized Cell Membrane in a Microchannel.

Authors:  Masoumeh Mahboubi; Saeid Movahed; Reza Hosseini Abardeh; Vahid Hoshyargar
Journal:  J Membr Biol       Date:  2017-04-29       Impact factor: 1.843

2.  An engineered membrane to measure electroporation: effect of tethers and bioelectronic interface.

Authors:  William Hoiles; Vikram Krishnamurthy; Charles G Cranfield; Bruce Cornell
Journal:  Biophys J       Date:  2014-09-16       Impact factor: 4.033

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.  Numerical modeling of bi-polar (AC) pulse electroporation of single cell in microchannel to create nanopores on its membrane.

Authors:  Saeid Movahed; Yousef Bazargan-Lari; Farhang Daneshmad; Mashhood Mashhoodi
Journal:  J Membr Biol       Date:  2014-10-05       Impact factor: 1.843

5.  Hybrid analytical-numerical approach for investigation of differential effects in normal and cancer cells under electroporation.

Authors:  Muhammad Awais Aslam; Kashif Riaz; Muhammad Qasim Mahmood; Muhammad Zubair
Journal:  RSC Adv       Date:  2019-12-16       Impact factor: 4.036

  5 in total

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