Interface Water Dynamics and Porating Electric Fields for Phospholipid Bilayers
- 7 October 2008
- journal article
- research article
- Published by American Chemical Society (ACS) in The Journal of Physical Chemistry B
- Vol. 112 (43) , 13588-13596
- https://doi.org/10.1021/jp8027726
Abstract
Lipid bilayers, normally a barrier to charged species and large molecules, are permeabilized by electric fields, a phenomenon exploited by cell biologists and geneticists for porating and transfecting cells and tissues. Recent molecular simulation studies have advanced our understanding of electroporation, but the relative contributions of atomically local details (interface water and headgroup dipole and counterion configurations) and medium- and long-range electrostatic gradients and changes in membrane structural shifts to the initiating conditions and mechanisms of pore formation remain unclear. Molecular dynamics simulations of electroporation in several lipid systems presented here reveal the effects of lipid hydrocarbon tail length and composition on the magnitude of the field required for poration and on the location of the initial sites of field-driven water intrusion into the bilayer. Minimum porating external fields of 260 mV nm−1, 280 mV nm−1, 320 mV nm−1, and 380 mV nm−1 were found for 1,2-dilauroyl-sn-glycero-3-phosphatidylcholine (DLPC), 1,2-dipalmitoyl-sn-glycero-3-phosphatidylcholine (DPPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphatidylcholine (POPC), and 1,2-dioleoyl-sn-glycero-3-phosphatidylcholine (DOPC) bilayers, respectively, and correlated most strongly with the bilayer thickness. These phospholipid systems share several common features including a wide, dynamic distribution of the headgroup dipole angle with the bilayer normal ranging from 0 to 155° that is only slightly shifted in a porating electric field, and similar electric field-induced shifts in water dipole orientation, although the mean water dipole moment profile at the aqueous−membrane interface is more sensitive to the electric field for DOPC than for the other phospholipids. The location of pore initiation, at the anode- or cathode-facing leaflet, varies with the composition of the bilayer and correlates with a change in the polarity of the localized electric field at the interface.Keywords
This publication has 54 references indexed in Scilit:
- In vitro and in vivo evaluation and a case report of intense nanosecond pulsed electric field as a local therapy for human malignanciesInternational Journal of Cancer, 2007
- Nanopore-facilitated, voltage-driven phosphatidylserine translocation in lipid bilayers—in cells andin silicoPhysical Biology, 2006
- Nanosecond pulsed electric fields cause melanomas to self-destructBiochemical and Biophysical Research Communications, 2006
- The molecular basis of electroporationBMC Biochemistry, 2004
- Nanoelectropulse-Induced Phosphatidylserine TranslocationBiophysical Journal, 2004
- Stimulation of Capacitative Calcium Entry in HL-60 Cells by Nanosecond Pulsed Electric FieldsJournal of Biological Chemistry, 2004
- Ultrashort pulsed electric fields induce membrane phospholipid translocation and caspase activation: differential sensitivities of Jurkat T lymphoblasts and rat Glioma C6 cellsIEEE Transactions on Dielectrics and Electrical Insulation, 2003
- Calcium bursts induced by nanosecond electric pulsesPublished by Elsevier ,2003
- Nanosecond, high‐intensity pulsed electric fields induce apoptosis in human cellsThe FASEB Journal, 2003
- Nanosecond pulsed electric field (nsPEF) effects on cells and tissues: apoptosis induction and tumor growth inhibitionIEEE Transactions on Plasma Science, 2002