F. Aguel et al., Effects of electroporation on the transmembrane potential distribution in a two-dimensional bidomain model of cardiac tissue, J CARD ELEC, 10(5), 1999, pp. 701-714
Citations number
47
Categorie Soggetti
Cardiovascular & Respiratory Systems","Cardiovascular & Hematology Research
Electroporation in a Two-Dimensional Myocardium. Introduction: Defibrillati
on shocks, when delivered through internal electrodes, establish transmembr
ane potentials (V-m) large enough to electroporate the membrane of cardiac
cells. The effects of such shocks on the transmembrane potential distributi
on are investigated in a two-dimensional rectangular sheet of cardiac muscl
e modeled as a bidomain with unequal anisotropy ratios.
Methods and Results: The membrane is represented by a capacitance C-m, a le
akage conductance g(l), and a variable electroporation conductance G, whose
rate of growth depends exponentially on the square of V-m. The stimulating
current I-o, 0.05-20 A/m, is delivered through a pair of electrodes placed
2 cm apart for stimulation along fibers and 1 cm apart for stimulation acr
oss fibers. Computer simulations reveal three categories of response to I-o
: (1) Weak I-o, below 0.2 A/m, cause essentially no electroporation, and V-
m increases proportionally to I-o. (2) Strong I-o, between 0.2 and 2.5 A/m,
electroporate tissue under the physical electrode. V-m is no longer propor
tional to I-o; in the electroporated region, the growth of V-m is halted an
d in the region of reversed polarity (virtual electrode), the growth of V-m
is accelerated. (3) Very strong I-o, above 2.5 A/m, electroporate tissue u
nder the physical and the virtual electrodes. The growth of V-m in all elec
troporated regions is halted, and a further increase of I-o increases both
the extent of the electroporated regions and the electroporation conductanc
e G.
Conclusion: These results indicate that electroporation of the cardiac memb
rane plays an important role in the distribution of V-m induced by defibril
lation strength shocks. (J Cardiovasc Electrophysiol, Vol. 10, pp. 701-714,
May 1999).