Catheter ablation for treatment of tachyarrhythmias: present role and potential promise.
Author(s) -
Melvin M. Scheinman,
Jesse C. Davis
Publication year - 1986
Publication title -
circulation
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 7.795
H-Index - 607
eISSN - 1524-4539
pISSN - 0009-7322
DOI - 10.1161/01.cir.73.1.10
Subject(s) - medicine , stereochemistry , chemistry
DELIVERY OF high-energy direct-current shocks through electrode catheters for treatment of patients with cardiac arrhythmias was first introduced in 1981 Since that time, this experimental technique has become established as a therapeutic tool for selected patients. This essay will review the basic biophysical effects of such shocks, summarize the present clinical indications for this therapy, and speculate on the future directions for interventional electrophysiology. Biophysical effects of catheter electroshocks. The delivery of 200 to 400 J of stored energy through an electrode catheter results in 2000 to 3000 V potentials at the electrode surface. If the discharge is delivered into a saline solution, an explosive flash develops.2 This electrical energy is at least partially converted to heat. In addition, the explosion produces concussion waves exceeding 1 to 2 atmospheres of pressure.2 Finally, the intense electrical charge may disrupt cellular integrity.3 Thus, local injury after delivered shocks may result from thermal electrocoagulation of tissue,' strong concussive shock waves,2 or membrane damage due to the intense electrical field.3 One other factor should be emphasized. The structural integrity of the electrode catheter materials to withstand shocks of this magnitude must be assured.4 Most conventional direct-current defibrillators deliver capacitor discharge over 5 to 10 msec, with peak voltage achieved within 1 to 2 msec. Delivery of 1000 to 3000 V to one electrode of a multipolar electrode catheter may result in insulation breakdown with shunting of current to other electrodes and hence less delivered energy to the tissues. These factors will obviously influence the safety and efficacy of this approach. The histologic effects of catheter-delivered shocks have been described5 6 and we have previously described the evolutionary histology after catheter-delivered shock in the normal canine heart. Anodal and cathodal discharge produce qualitatively similar
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