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Scaling relationship and optimization of double-pulse electroporation
Journal article   Peer reviewed

Scaling relationship and optimization of double-pulse electroporation

Mohamed M. Sadik, Miao Yu, Mingde Zheng, Jeffrey D. Zahn, Jerry W. Shan, David I. Shreiber and Hao Lin
Biophysical journal, Vol.106(4), pp.801-812
02/18/2014
PMCID: PMC3944924
PMID: 24559983

Abstract

Life Sciences & Biomedicine Science & Technology Biophysics
The efficacy of electroporation is known to vary significantly across a wide variety of biological research and clinical applications, but as of this writing, a generalized approach to simultaneously improve efficiency and maintain viability has not been available in the literature. To address that discrepancy, we here outline an approach that is based on the mapping of the scaling relationships among electroporation-mediated molecular delivery, cellular viability, and electric pulse parameters. The delivery of Fluorescein-Dextran into 3T3 mouse fibroblast cells was used as a model system. The pulse was rationally split into two sequential phases: a first precursor for permeabilization, followed by a second one for molecular delivery. Extensive data in the parameter space of the second pulse strength and duration were collected and analyzed with flow cytometry. The fluorescence intensity correlated linearly with the second pulse duration, confirming the dominant role of electrophoresis in delivery. The delivery efficiency exhibited a characteristic sigmoidal dependence on the field strength. An examination of short-term cell death using 7-Aminoactinomycin D demonstrated a convincing linear correlation with respect to the electrical energy. Based on these scaling relationships, an optimal field strength becomes identifiable. A model study was also performed, and the results were compared with the experimental data to elucidate underlying mechanisms. The comparison reveals the existence of a critical transmembrane potential above which delivery with the second pulse becomes effective. Together, these efforts establish a general route to enhance the functionality of electroporation.
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SadikBiohysJ1.80 MB
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https://doi.org/10.1016/j.bpj.2013.12.045View
Version of Record (VoR) Biophysical journal
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