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Updated: Oct 13, 2025

An Experimental Model of Myocardial Infarction for Studying Cardiac Repair and Remodeling in Knockout Mice
Published on: July 14, 2023
Relationship between electrical myocardial instability and postinfarction remodeling in patients with ST-segment
V E Oleynikov1, Yu A Barmenkova1, E V Dushina1
1Penza State University, Penza.
Insights
Pathological myocardial remodeling after myocardial infarction is linked to electrical instability, increasing cardiovascular risks and reducing quality of life. Early detection and management of these markers are crucial for better patient outcomes.
Area of Science:
- Cardiology
- Electrophysiology
- Medical Imaging
Background:
- ST-segment elevation myocardial infarction (STEMI) survivors face risks of cardiovascular complications (CVC) and impaired quality of life.
- Left ventricular (LV) myocardial remodeling is a significant predictor of adverse outcomes post-STEMI.
- Assessing myocardial electrical instability alongside echocardiographic parameters may improve risk stratification.
Purpose of the Study:
- To evaluate the clinical utility of myocardial electrical instability markers combined with echocardiographic parameters for predicting CVC risk in the post-STEMI period.
- To investigate the association between pathological LV remodeling and electrophysiological changes after STEMI.
- To assess the impact of remodeling and electrical instability on patient quality of life and long-term endpoints.
Main Methods:
- 118 STEMI patients undergoing percutaneous coronary intervention (PCI) were monitored.
- ECG Holter monitoring assessed ventricular late potentials, QT dispersion, heart rate turbulence (HRT), heart rate variability (HRV), and heart chronotropic load (HCL).
- Echocardiography measured LV volumes to identify pathological remodeling (iEDV >20% or iESV >15%) at 12 weeks post-STEMI.
Main Results:
- Patients without pathological remodeling (R(-)) showed improved myocardial electrical stability by week 48, with reduced HCL and restored baroreflex sensitivity.
- Significant improvements in repolarization stability (decreased disp QTa/e, sd QTa/e) and HRV were observed in the R(-) group.
- The pathological remodeling group (R(+)) experienced significantly higher rates of adverse endpoints (87.1% vs. 27.8%) and reported lower quality of life.
Conclusions:
- Pathological myocardial remodeling in the early post-STEMI period is strongly associated with myocardial electrophysiological instability.
- This electrophysiological instability contributes to the development of CVC and a diminished quality of life in STEMI patients.
- Combined assessment of electrical markers and echocardiographic remodeling provides valuable prognostic information for post-STEMI patients.
Abstract:
Aim To study the clinical value of markers for myocardial electrical instability in combination with echocardiographic parameters for predicting the risk of cardiovascular complications (CVC) in the postinfarction period.Material and methods This study included 118 patients with ST segment elevation myocardial infarction (STEMI) and hemodynamically significant stenosis of one coronary artery. A percutaneous coronary intervention (PCI) with stenting of the infarct-related artery was performed for all patients. On day 7-9 and at 24 and 48 weeks after the treatment, ECG Holter monitoring was performed, which included analyses of ventricular late potentials, dispersion of QT interval duration, heart rate turbulence (HRT) and variability (HRV), and heart chronotropic load (HCL). At baseline and during postinfarction week 12, all patients underwent echocardiography with calculation of indexes of end-diastolic volume (iEDV) and end-systolic volume (iESV) to verify the signs of left ventricular (LV) myocardial remodeling. The criteria for LV pathological remodeling included increases in iEDV >20 % and/or iESV >15 % at 12 weeks after STEMI. The group without remodeling, R(-), consisted of 79 (67 %) patients and the group with signs of LV pathological remodeling, R(+), consisted of 39 (33 %) patients. Quality of life and achieved endpoints were evaluated during 144 weeks.Results By week 48 in group R(-), the stabilization of electrical processes in the myocardium was more pronounced as indicated by a decrease in HFLA by 12 % (р=0.004) and by a fourfold increase in RMS (р=0.047). Only in this group, the baroreflex sensitivity restored; pathological ТРС decreased from 20 to 5% (p=0.002) by the end of the active treatment. Stabilization of the repolarization phase duration in various parts of the myocardium was more active in patients without pathological remodeling as shown by decreases in disp QTa (р=0.009), disp QTe (р=0.03), sd QTa (р=0.006), and sd QTe (р=0.009). This was not observed in the group R(+). The recovery of vagosympathetic balance due to leveling the sympathetic component also was more effective in the group R(-), which was reflected in increased spectral and temporal HRV indexes (р<0.05). Both groups showed reduced HCL values at 24 weeks (р=0.047 and р=0.006); however, the HCL regression remained also at 48 weeks only in the group R(-) (р=0.006). Group R(-) patients reported higher quality of life (р=0.03) than group R(+) patients. Endpoints were achieved more frequently in the group R(+): 87.1 % vs. 27.8 % (odds ratio, 11.8; 95 % confidence interval, 4.6-30.8; р=0.00001).Conclusion Pathological myocardial remodeling in early postinfarction period is associated with electrophysiological instability of the myocardium, which results in the development of CVC and low quality of life in patients with STEMI.
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