共 29 条
Ablation of multi-wavelet re-entry: general principles and in silico analyses
被引:20
作者:
Spector, Peter S.
[1
,2
,3
]
de Sa, Daniel D. Correa
[1
,2
]
Tischler, Ethan S.
[1
]
Thompson, Nathaniel C.
[1
,2
]
Habel, Nicole
[1
]
Stinnett-Donnelly, Justin
[1
,2
]
Benson, Bryce E.
[4
]
Bielau, Philipp
[1
]
Bates, Jason H. T.
[1
,3
,4
]
机构:
[1] Univ Vermont, Coll Burlington, Dept Med, Burlington, VT 05405 USA
[2] Fletcher Allen Hlth Care, Burlington, VT USA
[3] Cardiovasc Res Inst, Burlington, VT USA
[4] Univ Burlington, Coll Engn & Math Sci, Burlington, VT USA
来源:
EUROPACE
|
2012年
/
14卷
关键词:
Ablation;
Arrhythmia;
Catheter ablation;
Fibrillation;
Re-entry;
Computer modelling;
FRACTIONATED ATRIAL ELECTROGRAMS;
CATHETER ABLATION;
AUTONOMIC MECHANISM;
FIBRILLATION;
HEART;
TISSUE;
MODEL;
PROPAGATION;
EXCITATION;
RESOLUTION;
D O I:
10.1093/europace/eus278
中图分类号:
R5 [内科学];
学科分类号:
1002 ;
100201 ;
摘要:
Aims Catheter ablation strategies for treatment of cardiac arrhythmias are quite successful when targeting spatially constrained substrates. Complex, dynamic, and spatially varying substrates, however, pose a significant challenge for ablation, which delivers spatially fixed lesions. We describe tissue excitation using concepts of surface topology which provides a framework for addressing this challenge. The aim of this study was to test the efficacy of mechanism-based ablation strategies in the setting of complex dynamic substrates. Methods and results We used a computational model of propagation through electrically excitable tissue to test the effects of ablation on excitation patterns of progressively greater complexity, from fixed rotors to multi-wavelet re-entry. Our results indicate that (i) focal ablation at a spiral-wave core does not result in termination; (ii) termination requires linear lesions from the tissue edge to the spiral-wave core; (iii) meandering spiral-waves terminate upon collision with a boundary (linear lesion or tissue edge); (iv) the probability of terminating multi-wavelet re-entry is proportional to the ratio of total boundary length to tissue area; (v) the efficacy of linear lesions varies directly with the regional density of spiral-waves. Conclusion We establish a theoretical framework for re-entrant arrhythmias that explains the requirements for their successful treatment. We demonstrate the inadequacy of focal ablation for spatially fixed spiral-waves. Mechanistically guided principles for ablating multi-wavelet re-entry are provided. The potential to capitalize upon regional heterogeneity of spiral-wave density for improved ablation efficacy is described.
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页码:V106 / V111
页数:6
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