TY - JOUR
T1 - Dynamics of wavelets and their role in atrial fibrillation in the isolated sheep heart
AU - Chen, Jay
AU - Mandapati, Ravi
AU - Berenfeld, Omer
AU - Skanes, Allan C.
AU - Gray, Richard A.
AU - Jalife, José
N1 - Funding Information:
This work was supported in part by Grants PO1-HL39707 and RO1-H260843 from the National Heart, Lung and Blood Institute NIH, a NASPE Fellowship awarded to Dr. Allan Skanes, and AHA N.Y. State Affiliate fellowships awarded to Jay Chen, and Drs. Omer Beren-feld and Ravi Mandapati. We would like to thank Jiang Jiang, Clara Wu, Fan Yang, and Tatiana Yuzyuk for their technical assistance. In addition, we would like to thank Dr.s Jacques Beaumont, Dhananjay Vaidya, and Arkady Pertsov for their invaluable discussion during the preparation of this manuscript.
PY - 2000/11
Y1 - 2000/11
N2 - Background: The multiple wavelet hypothesis is the most commonly accepted mechanism underlying atrial fibrillation (AF). However, high frequency periodic activity has recently been suggested to underlie atrial fibrillation in the isolated sheep heart. We hypothesized that in this model, multiple wavelets during AF are generated by fibrillatory conduction away from periodic sources and by themselves may not be essential for AF maintenance. Methods and results: We have used a new method of phase mapping that enables identification of phase singularities (PSs), which flank individual wavelets during sustained AF. The approach enabled characterization of the initiation, termination, and lifespan of wavelets formed as a result of wavebreaks, which are created by the interaction of wave fronts with functional and anatomical obstacles in their path. AF was induced in six Langendorff-perfused sheep hearts in the presence of acetylcholine. High resolution video imaging was utilized in the presence of a voltage sensitive dye; two-dimensional phase maps were constructed from optical recordings. The major results were as follows: (1) the critical inter-PS/wavelet distance for the formation of rotors was 4 mm, (2) the spatial distribution of wavelets/PSs was non-random. (3) the lifespan of PSs/wavelets was short; 98% of PSs/wavelets existed for <1 rotation, and (4) the mean number of waves that entered our mapping field (15.7±1.6) exceeded the mean number of waves that exited it (9.7±1.5; P<0.001). Conclusions: Our results strongly suggest that multiple wavelets may result from breakup of high frequency organized waves in the isolated Langendorff-perfused sheep heart, and as such are not a robust mechanism for the maintenance of AF in our model. Copyright (C) 2000 Elsevier Science B.V.
AB - Background: The multiple wavelet hypothesis is the most commonly accepted mechanism underlying atrial fibrillation (AF). However, high frequency periodic activity has recently been suggested to underlie atrial fibrillation in the isolated sheep heart. We hypothesized that in this model, multiple wavelets during AF are generated by fibrillatory conduction away from periodic sources and by themselves may not be essential for AF maintenance. Methods and results: We have used a new method of phase mapping that enables identification of phase singularities (PSs), which flank individual wavelets during sustained AF. The approach enabled characterization of the initiation, termination, and lifespan of wavelets formed as a result of wavebreaks, which are created by the interaction of wave fronts with functional and anatomical obstacles in their path. AF was induced in six Langendorff-perfused sheep hearts in the presence of acetylcholine. High resolution video imaging was utilized in the presence of a voltage sensitive dye; two-dimensional phase maps were constructed from optical recordings. The major results were as follows: (1) the critical inter-PS/wavelet distance for the formation of rotors was 4 mm, (2) the spatial distribution of wavelets/PSs was non-random. (3) the lifespan of PSs/wavelets was short; 98% of PSs/wavelets existed for <1 rotation, and (4) the mean number of waves that entered our mapping field (15.7±1.6) exceeded the mean number of waves that exited it (9.7±1.5; P<0.001). Conclusions: Our results strongly suggest that multiple wavelets may result from breakup of high frequency organized waves in the isolated Langendorff-perfused sheep heart, and as such are not a robust mechanism for the maintenance of AF in our model. Copyright (C) 2000 Elsevier Science B.V.
KW - Acetylcholine
KW - Arrhythmia (mechanisms)
KW - Conduction (block)
KW - Mapping
KW - Supraventr. arrhythmias
KW - Data Interpretation, Statistical
KW - Atrial Function/physiology
KW - Male
KW - Chi-Square Distribution
KW - Animals
KW - Atrial Fibrillation/physiopathology
KW - Analysis of Variance
KW - Perfusion
KW - Video Recording
KW - Female
KW - Sheep
KW - Fluorescent Dyes
KW - Disease Models, Animal
UR - https://www.scopus.com/pages/publications/0033778578
UR - https://www.scopus.com/pages/publications/0033778578#tab=citedBy
U2 - 10.1016/S0008-6363(00)00177-2
DO - 10.1016/S0008-6363(00)00177-2
M3 - Article
C2 - 11054469
SN - 0008-6363
VL - 48
SP - 220
EP - 232
JO - Cardiovascular Research
JF - Cardiovascular Research
IS - 2
ER -