High arrhythmic risk in antero-septal acute myocardial ischemia is explained by increased transmural reentry
Hector Martinez-Navarro1, Ana Mincholé1, Alfonso Bueno-Orovio1
1Department of Computer Science, British Heart Foundation Centre of Research Excellence, University of Oxford, Parks Rd., OX13QD, Oxford, UK.
Insights
Understanding how myocardial ischemia affects arrhythmia risk is crucial. This study reveals transmural ischemia increases reentry risk via macro-reentry, while subendocardial ischemia involves micro-reentry, guiding anti-arrhythmic therapy development.
Area of Science:
- Computational biology
- Cardiovascular research
- Medical simulation
Background:
- Acute myocardial ischemia is a primary cause of sudden arrhythmic death.
- Variability in ischemic manifestations complicates arrhythmia mechanism understanding and risk stratification.
Purpose of the Study:
- To elucidate how ischemia's size, transmural extent, and location influence arrhythmia vulnerability and ECG changes.
- To differentiate mechanisms of arrhythmia generation in transmural versus subendocardial ischemia.
Main Methods:
- Biophysically-detailed human torso/biventricular model simulations.
- Quantification of varying ischemic region properties (location, transmurality, size, propagation speed).
- Computation of ECG biomarkers and vulnerability windows for reentry in over 400 simulations.
Main Results:
- Transmural ischemia increases reentry vulnerability primarily through macro-reentry, regardless of occlusion location (LAD/LCX).
- Subendocardial ischemia's vulnerability is linked to transmural micro-reentry at the border zone, especially with LAD occlusion.
- ST elevation correlates with transmural ischemic extent, unlike subendocardial ischemia which shows ST depression.
Conclusions:
- Distinct reentry mechanisms (macro- vs. micro-reentry) explain differential arrhythmia vulnerability in transmural versus subendocardial ischemia.
- Findings provide insights into ECG alterations and arrhythmia risk based on ischemic characteristics.
- The simulation approach can aid in evaluating anti-arrhythmic therapies for acute myocardial ischemia.
Abstract:
Acute myocardial ischemia is a precursor of sudden arrhythmic death. Variability in its manifestation hampers understanding of arrhythmia mechanisms and challenges risk stratification. Our aim is to unravel the mechanisms underlying how size, transmural extent and location of ischemia determine arrhythmia vulnerability and ECG alterations. High performance computing simulations using a human torso/biventricular biophysically-detailed model were conducted to quantify the impact of varying ischemic region properties, including location (LAD/LCX occlusion), transmural/subendocardial ischemia, size, and normal/slow myocardial propagation. ECG biomarkers and vulnerability window for reentry were computed in over 400 simulations for 18 cases evaluated. Two distinct mechanisms explained larger vulnerability to reentry in transmural versus subendocardial ischemia. Macro-reentry around the ischemic region was the primary mechanism increasing arrhythmic risk in transmural versus subendocardial ischemia, for both LAD and LCX occlusion. Transmural micro-reentry at the ischemic border zone explained arrhythmic vulnerability in subendocardial ischemia, especially in LAD occlusion, as reentries were favoured by the ischemic region intersecting the septo-apical region. ST elevation reflected ischemic extent in transmural ischemia for LCX and LAD occlusion but not in subendocardial ischemia (associated with mild ST depression). The technology and results presented can inform safety and efficacy evaluation of anti-arrhythmic therapy in acute myocardial ischemia.
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