Development of an automaton model of rotational activity driving atrial fibrillation

被引:11
|
作者
Ciaccio, E. J. [1 ]
Biviano, A. B. [1 ]
Wan, E. Y. [1 ]
Peters, N. S. [2 ]
Garan, H. [1 ]
机构
[1] Columbia Univ Coll Phys & Surg, Dept Med, Div Cardiol, New York, NY USA
[2] Imperial Coll London, Dept Med, Cardiovasc Sci, London, England
关键词
Atrial fibrillation; Conduction block; Rotational activity; Rotor; Vortex; INFARCT BORDER ZONE; ROTOR MODULATION; FOCAL IMPULSE; FRACTIONATED ELECTROGRAMS; VENTRICULAR-TACHYCARDIA; CHAMBER QUANTIFICATION; CONVENTIONAL ABLATION; REENTRANT CIRCUITS; CATHETER ABLATION; CARDIAC-MUSCLE;
D O I
10.1016/j.compbiomed.2017.02.008
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Atrial fibrillation (AF) is difficult to treat effectively, owing to uncertainty in where to best ablate to eliminate arrhythmogenic substrate. A model providing insight into the electrical activation events would be useful to guide catheter ablation strategy. Method A two-dimensional, 576x576 node automaton was developed to simulate atrial electrical activity. The substrate field was altered by the presence of differing refractory period at varying locations. Fibrosis was added in the form of short, randomly positioned lines of conduction block. Larger areas of block were used to simulate ablation lesions. Anisotropy was imposed in a 2:1 ratio. A premature electrical impulse from one of four grid corners was utilized to initiate activation. Results: Rotational activity was uninducible when refractory patch dimensions were less than 20x20 mm. For larger refractory regions, a single premature stimulus was capable of inducing an average of 1.19 +/- 1.10 rotors, which often formed near the patch edges. A maximum of 5 rotors formed when refractory patch dimensions approached the size of the entire left atrial virtual field. Rotors formed along a refractory patch edge, after wavefront arrival was delayed at turning points or due to the presence of a fiber cluster of sufficient size. However, rotational activity could also occur around a large fiber cluster without the need of spatially variable refractoriness. When obstacles to conduction were lacking in size, nascent rotors drifted and either extinguished, or stabilized upon anchoring at a sufficiently large fiber cluster elsewhere in the field. Transient rotors terminated when traversing a region with differing refractory periods, if no obstacle to conduction was present to sufficiently delay wavefront arrival beyond the longest refractory period. Other rotors were annihilated when a nearby rotor with faster spin rate gradually interrupted the activation pathway. Elimination of anchors by removal, or by simulated ablation over a sufficient region, prevented rotor onset at a particular location where it would otherwise form. Conclusions: The presence of obstacles to conduction and spatial differences in refractory period are important parameters for initiating and maintaining rotational activity in this simulation of an atrial substrate.
引用
收藏
页码:166 / 181
页数:16
相关论文
共 50 条
  • [31] Development of a bleeding risk model for elderly warfarin recipients with atrial fibrillation
    Shireman, TI
    Mahnken, JD
    Howard, PA
    Kresowik, TF
    Ellerbeck, EF
    Hou, OJ
    CIRCULATION, 2005, 112 (17) : U899 - U899
  • [32] Development of a sheep model of atrial fibrillation for preclinical prosthetic valve testing
    Rivard, Andrew L.
    Suwan, Phillip T.
    Imaninaini, Keyoumars
    Gallegos, Robert P.
    Bianco, Richard W.
    JOURNAL OF HEART VALVE DISEASE, 2007, 16 (03): : 314 - 323
  • [33] MATHEMATICAL MODEL OF THE DEVELOPMENT OF ATRIAL FIBRILLATION IN PATIENTS WITH PREVIOUS MYOCARDIAL INFARCTION
    Filippova, Maria
    Polunina, Olga
    Akhmineeva, Aziza
    Polunina, Ekaterina
    Popov, Evgenii
    Chernysheva, Elena
    Falchar, Ruslan
    Kespleri, Elina
    ARCHIV EUROMEDICA, 2019, 9 (03): : 67 - 70
  • [34] Cellular automaton model of traffic flow based on safety driving
    Mou, YB
    Zhong, CW
    ACTA PHYSICA SINICA, 2005, 54 (12) : 5597 - 5601
  • [35] Atrial Fibrillation Begets Atrial Fibrillation in Small Animals: Characterization of New Rat Model of Spontaneous Atrial Fibrillation
    Balan, Alkora Ioana
    Halatiu, Vasile Bogdan
    Cozac, Dan Alexandru
    Comsulea, Emilian
    Mutu, Cosmin Constantin
    Aspru, Ioana
    Pacurar, Delia
    Banescu, Claudia
    Perian, Marcel
    Scridon, Alina
    BIOMEDICINES, 2025, 13 (03)
  • [36] A Cellular Automaton Model for Traffic Flow with Safe Driving Policies
    Larraga, M. E.
    Alvarez-Icaza, L.
    JOURNAL OF CELLULAR AUTOMATA, 2010, 5 (06) : 421 - 429
  • [37] The cellular automaton model of traffic flow based on the driving behavior
    Zheng Liang
    Ma Shou-Feng
    Jia Ning
    ACTA PHYSICA SINICA, 2010, 59 (07) : 4490 - 4498
  • [38] Atrial activity selection for atrial fibrillation ECG recordings
    Donoso, Felipe I.
    Figueroa, Rosa L.
    Lecannelier, Eduardo A.
    Pino, Esteban J.
    Rojas, Alejandro J.
    COMPUTERS IN BIOLOGY AND MEDICINE, 2013, 43 (10) : 1628 - 1636
  • [39] Atrial Electrical Activity Extraction for Atrial Fibrillation Assessment
    Ivanko, K.
    Ivanushkina, N.
    Karplyuk, Y.
    2016 IEEE 36TH INTERNATIONAL CONFERENCE ON ELECTRONICS AND NANOTECHNOLOGY (ELNANO), 2016, : 192 - 197
  • [40] Tranilast Prevents Atrial Remodeling and Development of Atrial Fibrillation in a Canine Model of Atrial Tachycardia and Left Ventricular Dysfunction
    Nakatani, Yosuke
    Nishida, Kunihiro
    Sakabe, Masao
    Kataoka, Naoya
    Sakamoto, Tamotsu
    Yamaguchi, Yoshiaki
    Iwamoto, Jotaro
    Mizumaki, Koichi
    Fujiki, Akira
    Inoue, Hiroshi
    JOURNAL OF THE AMERICAN COLLEGE OF CARDIOLOGY, 2013, 61 (05) : 582 - 588