Literature DB >> 18156311

Mechanistic analysis of electroporation-induced cellular uptake of macromolecules.

David A Zaharoff1, Joshua W Henshaw, Brian Mossop, Fan Yuan.   

Abstract

Pulsed electric field has been widely used as a nonviral gene delivery platform. The delivery efficiency can be improved through quantitative analysis of pore dynamics and intracellular transport of plasmid DNA. To this end, we investigated mechanisms of cellular uptake of macromolecules during electroporation. In the study, fluorescein isothiocyanate-labeled dextran (FD) with molecular weight of 4,000 (FD-4) or 2,000,000 (FD-2000) was added into suspensions of a murine mammary carcinoma cell (4T1) either before or at different time points (ie, 1, 2, or 10 sec) after the application of different pulsed electric fields (in high-voltage mode: 1.2-2.0 kV in amplitude, 99 microsec in duration, and 1-5 pulses; in low-voltage mode: 100-300 V in amplitude, 5-20 msec in duration, and 1-5 pulses). The intracellular concentrations of FD were quantified using a confocal microscopy technique. To understand transport mechanisms, a mathematical model was developed for numerical simulation of cellular uptake. We observed that the maximum intracellular concentration of FD-2000 was less than 3% of that in the pulsing medium. The intracellular concentrations increased linearly with pulse number and amplitude. In addition, the intracellular concentration of FD-2000 was approximately 40% lower than that of FD-4 under identical pulsing conditions. The numerical simulations predicted that the pores larger than FD-4 lasted <10 msec after the application of pulsed fields if the simulated concentrations were on the same order of magnitude as the experimental data. In addition, the simulation results indicated that diffusion was negligible for cellular uptake of FD molecules. Taken together, the data suggested that large pores induced in the membrane by pulsed electric fields disappeared rapidly after pulse application and convection was likely to be the dominant mode of transport for cellular uptake of uncharged macromolecules.

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Year:  2008        PMID: 18156311      PMCID: PMC2782745          DOI: 10.3181/0704-RM-113

Source DB:  PubMed          Journal:  Exp Biol Med (Maywood)        ISSN: 1535-3699


  64 in total

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Journal:  Biophys J       Date:  2001-02       Impact factor: 4.033

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Journal:  Biophys J       Date:  1999-09       Impact factor: 4.033

3.  Electropermeabilization of cell membranes.

Authors: 
Journal:  Adv Drug Deliv Rev       Date:  1999-01-04       Impact factor: 15.470

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Journal:  Biophys J       Date:  1992-11       Impact factor: 4.033

5.  Effects of pulse strength and pulse duration on in vitro DNA electromobility.

Authors:  David A Zaharoff; Fan Yuan
Journal:  Bioelectrochemistry       Date:  2004-04       Impact factor: 5.373

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Authors:  Marie-Pierre Rols
Journal:  Biochim Biophys Acta       Date:  2006-01-30

Review 7.  Electroporation of cell membranes.

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Journal:  Biophys J       Date:  1991-08       Impact factor: 4.033

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Journal:  Biochim Biophys Acta       Date:  1996-10-23

Review 9.  Field distribution and DNA transport in solid tumors during electric field-mediated gene delivery.

Authors:  Joshua W Henshaw; Fan Yuan
Journal:  J Pharm Sci       Date:  2008-02       Impact factor: 3.534

Review 10.  Delivery of viral vectors to tumor cells: extracellular transport, systemic distribution, and strategies for improvement.

Authors:  Yong Wang; Fan Yuan
Journal:  Ann Biomed Eng       Date:  2006-03-07       Impact factor: 3.934

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  22 in total

1.  Transmembrane potential measurements on plant cells using the voltage-sensitive dye ANNINE-6.

Authors:  Bianca Flickinger; Thomas Berghöfer; Petra Hohenberger; Christian Eing; Wolfgang Frey
Journal:  Protoplasma       Date:  2010-03-23       Impact factor: 3.356

2.  Current Progress in Electrotransfection as a Nonviral Method for Gene Delivery.

Authors:  Lisa D Cervia; Fan Yuan
Journal:  Mol Pharm       Date:  2018-06-20       Impact factor: 4.939

Review 3.  Mechanisms of transfer of bioactive molecules through the cell membrane by electroporation.

Authors:  Mindaugas S Venslauskas; Saulius Šatkauskas
Journal:  Eur Biophys J       Date:  2015-05-05       Impact factor: 1.733

4.  Involvement of a Rac1-Dependent Macropinocytosis Pathway in Plasmid DNA Delivery by Electrotransfection.

Authors:  Mao Mao; Liangli Wang; Chun-Chi Chang; Katheryn E Rothenberg; Jianyong Huang; Yingxiao Wang; Brenton D Hoffman; Paloma B Liton; Fan Yuan
Journal:  Mol Ther       Date:  2017-01-24       Impact factor: 11.454

5.  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

6.  Spatio-temporal dynamics of calcium electrotransfer during cell membrane permeabilization.

Authors:  Alexis Guionet; S Moosavi Nejad; Justin Teissié; Takashi Sakugawa; Sunao Katsuki; Hidenori Akiyama; Hamid Hosseini
Journal:  Drug Deliv Transl Res       Date:  2018-10       Impact factor: 4.617

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

Authors:  Saeid Movahed; Dongqing Li
Journal:  J Membr Biol       Date:  2012-11-06       Impact factor: 1.843

8.  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

9.  Electroporation-mediated gene delivery.

Authors:  Jennifer L Young; David A Dean
Journal:  Adv Genet       Date:  2014-12-11       Impact factor: 1.944

Review 10.  Physical non-viral gene delivery methods for tissue engineering.

Authors:  Adam J Mellott; M Laird Forrest; Michael S Detamore
Journal:  Ann Biomed Eng       Date:  2012-10-26       Impact factor: 3.934

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