Title :
Cellular excitation with high-frequency chopped defibrillator waveforms
Author :
Jones, Janice L. ; Sweeney, Robert J. ; Milne, Kevin B.
Author_Institution :
Dept. of Physiol. & Biophys., Georgetown Univ., Washington, DC, USA
Abstract :
Waveform shape and stimulus intensity are both critical in determining efficacy of defibrillating waveforms. Defibrillator waveforms for which the electrode current is interrupted or chopped at high frequency may alter current flow patterns in the heart and thereby lower defibrillation threshold. However, cellular effects of high-frequency chopped waveforms are unknown. Defibrillation may occur due to production of prolonged refractory period responses which prolong the fibrillation action potential through mechanisms similar to excitation. To test the hypothesis that cells can be excited by current which is chopped into many high frequency pulses, the authors examined effects of chop frequencies ranging from 0.05 to 25 kHz on cellular excitation threshold. The results show that excitation threshold depends on chop frequency in a theoretically predictable manner which suggests that the cell membrane integrates individual pulses at frequencies greater than 5 kHz
Keywords :
bioelectric phenomena; cardiology; cellular biophysics; defibrillators; muscle; 0.05 to 25 kHz; cell membrane; cellular excitation; chop frequency; electrode current; excitation threshold; fibrillation action potential; high-frequency chopped defibrillator waveforms; individual pulses integration; stimulus intensity; waveform efficacy; waveform shape; Biomembranes; Cells (biology); Defibrillation; Electrodes; Frequency; Heart; Numerical analysis; Production; Pulse amplifiers; Pulse shaping methods; Shape; Solids; Testing;
Conference_Titel :
Engineering in Medicine and Biology Society, 1994. Engineering Advances: New Opportunities for Biomedical Engineers. Proceedings of the 16th Annual International Conference of the IEEE
Conference_Location :
Baltimore, MD
Print_ISBN :
0-7803-2050-6
DOI :
10.1109/IEMBS.1994.412168