Absolute beat-to-beat variability and instability parameters of ECG intervals: biomarkers for predicting
Annamária Sarusi1, Ferenc Rárosi, Mónika Szűcs
1Department of Pharmacology and Pharmacotherapy, University of Szeged, Szeged, Hungary.
Insights
Beat-to-beat variability and instability (BVI) parameters, measured irrespective of heart rhythm, effectively predict lethal ventricular fibrillation (VF). These novel biomarkers, particularly those assessing repolarization, show diagnostic congruence across different arrhythmias.
Area of Science:
- Cardiovascular Physiology
- Electrophysiology
- Pharmacology
Background:
- Predicting lethal arrhythmias is crucial for drug safety assessment.
- Traditional methods often rely on arrhythmia-free electrocardiogram (ECG) data.
- Absolute beat-to-beat variability and instability (BVI) parameters, measured irrespective of cardiac rhythm, offer improved prediction of drug-induced torsades de pointes (TdP).
Purpose of the Study:
- To investigate the predictive capability of absolute BVI parameters for ischaemia-induced ventricular fibrillation (VF).
- To determine if BVI parameters effective for TdP prediction are also applicable to VF.
- To identify novel biomarkers for VF in pre-clinical drug development.
Main Methods:
- Langendorff-perfused rat hearts underwent regional ischaemia.
- Absolute BVI parameters were calculated from ECG intervals of 40 consecutive ventricular complexes before VF onset.
- These parameters were compared to time-matched values from hearts without VF.
Main Results:
- Increased non-sinus and 'R on T' beats, shortened RR intervals, and elevated BVI of cycle length and repolarization predicted VF.
- Absolute BVI parameters quantifying repolarization variability demonstrated the highest predictive power (sensitivity and specificity).
- BVI parameters derived from arrhythmia-free periods did not predict VF.
Conclusions:
- Absolute BVI parameters that predict TdP in rabbits also predict ischaemia-induced VF in rats, suggesting conserved mechanisms.
- Repolarization inhomogeneity is a key biomarker for ischaemia-induced VF.
- These validated BVI biomarkers can serve as surrogates for VF in pre-clinical drug safety evaluations.
Background And Purpose:
Predicting lethal arrhythmia liability from beat-to-beat variability and instability (BVI) of the ECG intervals is a useful technique in drug assessment. Most investigators use only arrhythmia-free ECGs for this. Recently, it was shown that drug-induced torsades de pointes (TdP) liability can be predicted more accurately from BVI measured irrespective of rhythm, even during arrhythmias (absolute BVI). The present study tested the broader applicability of this assessment by examining whether absolute BVI parameters predict another potential lethal arrhythmia, ischaemia-induced ventricular fibrillation (VF).
Experimental Approach:
Langendorff-perfused rat hearts were subjected to regional ischaemia for 15 min. Absolute BVI parameters were derived from ECG intervals measured in 40 consecutive ventricular complexes (irrespective of rhythm) immediately preceding VF onset and compared with time-matched values in hearts not expressing VF.
Key Results:
Increased frequency of non-sinus beats and 'R on T' arrhythmic beats, shortened mean RR and electrical diastolic intervals, and increased BVI of cycle length and repolarization predicted VF occurrence. Absolute BVI parameters that quantify variability of repolarization (e.g. 'short-term variability' of QT interval) had the best predictive power with high sensitivity and specificity. In contrast, VF was not predicted by any BVI parameter derived from the last arrhythmia-free interlude before VF.
Conclusions And Implications:
The novel absolute BVI parameters that predicted TdP in rabbit also predict ischaemia-induced VF in rat, indicating a diagnostic and mechanistic congruence. Repolarization inhomogeneity represents a pivotal biomarker of ischaemia-induced VF. The newly validated biomarkers could serve as surrogates for VF in pre-clinical drug investigations.
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