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Electrophysiological Assessment of Murine Atria with High-Resolution Optical Mapping
Published on: February 22, 2018
A possible new cardiac heterogeneity as an arrhythmogenic driver
A Rabinovitch1, R Rabinovitch2, Y Biton3
1Physics Department, Ben-Gurion University, Beer-Sheva, Israel. avinoam@bgu.ac.il.
Insights
Intermittent myocyte operation, a newly identified factor, significantly increases the risk of atrial fibrillation (AF). While diffuse fibrosis alone isn't arrhythmogenic, its combination with other factors can influence AF development, highlighting new therapeutic targets.
Area of Science:
- Computational Biology
- Cardiac Electrophysiology
- Medical Modeling
Background:
- Atrial fibrillation (AF) is a prevalent cardiac arrhythmia affecting millions, with a significant portion experiencing treatment resistance.
- The precise etiology and mechanisms of AF remain incompletely understood, with current research focusing on tissue heterogeneities and triggering agents.
Purpose of the Study:
- To investigate the arrhythmogenic potential of different myocardial heterogeneities, including a novel concept of intermittency.
- To develop and validate a simplified mathematical model capable of simulating AF development stages.
Main Methods:
- A 2D cellular automata mathematical model was employed to simulate AF development in heterogeneous cardiac tissue.
- The model incorporated three types of heterogeneities: diffuse fibrosis, varying myocyte refractory periods, and intermittent myocyte operation.
- Simulations were conducted under sinus node operation with and without ectopic activity to observe AF induction.
Main Results:
- Diffuse fibrosis alone was not found to be arrhythmogenic but could modulate AF risk in combination with other factors.
- Combinations of heterogeneities demonstrated synergistic effects in promoting AF.
- Intermittent myocyte operation was identified as a highly arrhythmogenic factor, significantly increasing AF probability.
Conclusions:
- The developed mathematical model successfully replicates known AF origins and developmental stages.
- Intermittency represents a critical, previously unrecognized arrhythmogenic agent in AF.
- Understanding the roles of intermittency and fibrosis in AF generation offers potential for improved therapeutic strategies.
Abstract:
Atrial fibrillation (AF) is the commonest cardiac arrhythmia, affecting 3 million people in the USA and 8 million in the EU (according to the European Society of Cardiology). So, why is it that even with the best medical care, around a third of the patients are treatment resistant. Extensive research of its etiology showed that AF and its mechanisms are still debatable. Some of the AF origins are ascribed to functional and ionic heterogeneities of the heart tissue and possibly to additional triggering agents. But, have all AF origins been detected? Are all accepted origins, in fact, arrhythmogenic? In order to study these questions and specifically to check our new idea of intermittency as an arrhythmogenesis agent, we chose to employ a mathematical model which was as simple as possible, but which could still be used to observe the basic network processes of AF development. At this point we were not interested in the detailed ionic propagations nor in the actual shapes of the induced action potentials (APs) during the AF outbreaks. The model was checked by its ability to exactly recapture the basic AF developmental stages known from experimental cardiac observations and from more elaborate mathematical models. We use a simple cellular automata 2D mathematical model of N × N matrices to elucidate the field processes leading to AF in a tissue riddled with randomly distributed heterogeneities of different types, under sinus node operation, simulated by an initial line of briefly stimulated cells inducing a propagating wave, and with or without an additional active ectopic action potential pulse, in turn simulated by a transitory operation of a specific cell. Arrhythmogenic contributions, of three different types of local heterogeneities in myocytes and their collaborations, in inducing AF are examined. These are: a heterogeneity created by diffuse fibrosis, a heterogeneity created by myocytes having different refractory periods, and a new heterogeneity type, created by intermittent operation of some myocytes. The developmental stages (target waves and spirals) and the different probabilities of AF occurring under each condition, are shown. This model was established as being capable of reproducing the known AF origins and their basic development stages, and in addition has shown: (1) That diffuse fibrosis on its own is not arrhythmogenic but in combination with other arrhythmogenic agents it can either enhance or limit AF. (2) In general, combinations of heterogeneities can act synergistically, and, most importantly, (3) The new type of intermittency heterogeneity proves to be extremely arrhythmogenic. Both the intermittency risk and the fibrosis role in AF generation were established. Knowledge of the character of these arrhythmogenesis agents can be of real importance in AF treatment.
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