DocumentCode
1269165
Title
Temperature-controlled and constant-power radio-frequency ablation: what affects lesion growth?
Author
Jain, Mudit K. ; Wolf, Patrick D.
Author_Institution
Dept. of Biomed. Eng., Duke Univ., Durham, NC, USA
Volume
46
Issue
12
fYear
1999
Firstpage
1405
Lastpage
1412
Abstract
Radio-frequency (RF) catheter ablation is the primary interventional therapy for the treatment of many cardiac tachyarrhythmias. Three-dimensional finite element analysis of constant-power (CPRFA) and temperature-controlled RF ablation (TCRFA) of the endocardium is performed. The objectives are to study: (1) the lesion growth with time and (2) the effect of ground electrode location on lesion dimensions and ablation efficiency. The results indicate that: (a) for TCRFA: (i) lesion growth was fastest during the first 20 s, subsequently the lesion growth slowed reaching a steady state after 100 s, (ii) positioning the ground electrode directly opposite the catheter tip (optimal) produced a larger lesion, and (iii) a constant tip temperature maintained a constant maximum tissue temperature; (b) for CPRFA: (i) the lesion growth was fastest during the first 20 s and then the lesion growth slowed; however, the lesion size did not reach steady state even after 600 s suggesting that longer durations of energy delivery may result in wider and deeper lesions, (ii) the temperature dependent electrical conductivity of the tissue is responsible for this continuous lesion growth, and (iii) an optimal ground electrode location resulted in a slightly larger lesion and higher ablation efficiency.
Keywords
bioelectric phenomena; cardiology; finite element analysis; hyperthermia; patient treatment; physiological models; radiofrequency heating; 100 s; 20 s; 600 s; ablation efficiency; cardiac tachyarrhythmias treatment; computer model; constant maximum tissue temperature; constant tip temperature; continuous lesion growth; ground electrode location effect; ground electrode positioning; lesion dimensions; optimal ground electrode location; primary interventional therapy; temperature-controlled constant-power radio-frequency ablation; three-dimensional finite element analysis; Catheters; Electrodes; Finite element methods; Land surface temperature; Lesions; Medical treatment; Performance analysis; Radio frequency; Steady-state; Temperature dependence; Arrhythmias, Cardiac; Catheter Ablation; Computer Simulation; Dose-Response Relationship, Radiation; Humans; Models, Biological; Models, Theoretical; Myocardium; Radio Waves; Temperature; Time Factors;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/10.804568
Filename
804568
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