Cycle Length Evaluation in Persistent Atrial Fibrillation Using Kernel Density Estimation to Identify Transient and Stable Rapid Atrial Activity
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Published:2021-08-27
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Volume:
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ISSN:1869-408X
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Container-title:Cardiovascular Engineering and Technology
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language:en
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Short-container-title:Cardiovasc Eng Tech
Author:
Nagy Szabolcs Z.ORCID, Kasi Patrick, Afonso Valtino X., Bird Nathaniel, Pederson Brian, Mann Ian E., Kim Steven, Linton Nicholas W. F., Lefroy David C., Whinnett Zachary I., Ng Fu Siong, Koa-Wing Michael, Kanagaratnam Prapa, Peters Nicholas S., Qureshi Norman A., Lim Phang Boon
Abstract
Abstract
Purpose
Left atrial (LA) rapid AF activity has been shown to co-localise with areas of successful atrial fibrillation termination by catheter ablation. We describe a technique that identifies rapid and regular activity.
Methods
Eight-second AF electrograms were recorded from LA regions during ablation for psAF. Local activation was annotated manually on bipolar signals and where these were of poor quality, we inspected unipolar signals. Dominant cycle length (DCL) was calculated from annotation pairs representing a single activation interval, using a probability density function (PDF) with kernel density estimation. Cumulative annotation duration compared to total segment length defined electrogram quality. DCL results were compared to dominant frequency (DF) and averaging.
Results
In total 507 8 s AF segments were analysed from 7 patients. Spearman’s correlation coefficient was 0.758 between independent annotators (P < 0.001), 0.837–0.94 between 8 s and ≥ 4 s segments (P < 0.001), 0.541 between DCL and DF (P < 0.001), and 0.79 between DCL and averaging (P < 0.001). Poorer segment organization gave greater errors between DCL and DF.
Conclusion
DCL identifies rapid atrial activity that may represent psAF drivers. This study uses DCL as a tool to evaluate the dynamic, patient specific properties of psAF by identifying rapid and regular activity. If automated, this technique could rapidly identify areas for ablation in psAF.
Funder
Abbott Laboratories
Publisher
Springer Science and Business Media LLC
Subject
Cardiology and Cardiovascular Medicine,Biomedical Engineering
Reference35 articles.
1. Atienza, F., J. Almendral, J. M. Ormaetxe, Á. Moya, J. D. Martínez-Alday, A. Hernández-Madrid, E. Castellanos, F. Arribas, M. Á. Arias, L. Tercedor, R. Peinado, M. Fe Arcocha, M. Ortiz, N. Martínez-Alzamora, Á. Arenal, F. Fernández-Avilés, and J. Jalife. Comparison of radiofrequency catheter ablation of drivers and circumferential pulmonary vein isolation in atrial fibrillation: A noninferiority randomized multicenter RADAR-AF trial. J. Am. Coll. Cardiol. 64:2455–2467, 2014. https://doi.org/10.1016/j.jacc.2014.09.053. 2. Brooks, A. G., M. K. Stiles, J. Laborderie, D. H. Lau, P. Kuklik, N. J. Shipp, L. F. Hsu, and P. Sanders. Outcomes of long-standing persistent atrial fibrillation ablation: a systematic review. Heart Rhythm. 7:835–846, 2010. https://doi.org/10.1016/j.hrthm.2010.01.017. 3. Calvo, D., J. Rubín, D. Pérez, and C. Morís. Ablation of rotor domains effectively modulates dynamics of human: long-standing persistent atrial fibrillation. Circ. Arrhythmia Electrophysiol. 10:1–14, 2017. https://doi.org/10.1161/CIRCEP.117.005740. 4. Cappato, R., H. Calkins, S. Chen, W. Davies, Y. Iesaka, J. Kalman, Y. Kim, G. Klein, A. Natale, D. Packer, A. Skanes, F. Ambrogi, and E. Biganzoli. Updated worldwide survey on the methods, efficacy, and safety of catheter ablation for human atrial fibrillation. Circ. Arrhythmia Electrophysiol. 3:32–38, 2010. https://doi.org/10.1161/CIRCEP.109.859116. 5. Cuculich, P. S., Y. Wang, B. D. Lindsay, M. N. Faddis, R. B. Schuessler, R. J. Damiano, L. Li, and Y. Rudy. Noninvasive characterization of epicardial activation in humans with diverse atrial fibrillation patterns. Circulation. 122:1364–1372, 2010. https://doi.org/10.1161/CIRCULATIONAHA.110.945709.
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