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Updated: Dec 29, 2025

Translational Rabbit Model of Chronic Cardiac Pacing
Published on: January 6, 2023
Cardiac Contractility Modulation Attenuates Chronic Heart Failure in a Rabbit Model via the PI3K/AKT Pathway
Qingqing Hao1,2, Feifei Zhang2, Yudan Wang1
1School of Graduate, Hebei Medical University, Shijiazhuang, China.
Insights
Cardiac contractility modulation (CCM) therapy improved heart function in a chronic heart failure (HF) rabbit model. CCM treatment positively impacted the Pi3k/Akt signaling pathway, reducing fibrosis and improving cardiac health.
Area of Science:
- Cardiovascular Research
- Molecular Cardiology
- Biomedical Engineering
Background:
- The Akt signaling pathway is crucial for cardiac growth, angiogenesis, and cell death in cardiomyocytes.
- Limited research exists on the Akt pathway's response to cardiac contractility modulation (CCM) in chronic heart failure (HF) models.
Purpose of the Study:
- To investigate the effects of CCM on a rabbit model of chronic heart failure.
- To explore the impact of CCM on the Akt signaling pathway in the context of HF.
Main Methods:
- A chronic heart failure model was induced in rabbits via aortic constriction.
- Cardiac contractility modulation (CCM) was applied to the myocardium for four weeks.
- Protein levels of key signaling molecules (Akt, FOXO3, Beclin, Pi3k, mTOR, GSK-3β, TORC2) were analyzed using western blot.
Main Results:
- CCM therapy led to a recovery of body and heart weight in HF rabbits.
- CCM significantly reduced myocardial fibrosis and collagen deposition.
- CCM altered the Pi3k/Akt pathway, upregulating Pi3k and downregulating Akt, FOXO3, Beclin, mTOR, GSK-3β, and TORC2.
Conclusions:
- CCM demonstrates positive therapeutic effects in a rabbit model of chronic heart failure.
- The beneficial effects of CCM may be mediated through modulation of the Pi3k/Akt signaling pathway.
Abstract:
The Akt plays an important role in regulating cardiac growth, myocardial angiogenesis, and cell death in cardiac myocytes. However, there are few studies to focus on the responses of the Akt pathway to cardiac contractility modulation (CCM) in a chronic heart failure (HF) model. In this study, the effects of CCM on the treatment of HF in a rabbit model were investigated. Thirty six-month-old rabbits were randomly separated into control, HF, and CCM groups. The rabbits in HF and CCM groups were pressure uploaded, which can cause an aortic constriction. Then, CCM was gradually injected to the myocardium of rabbits in the CCM group, and this process lasted for four weeks with six hours per day. Rabbit body weight, heart weight, and heart beating rates were recorded during the experiment. To assess the CCM impacts, rabbit myocardial histology was examined as well. Additionally, western blot analysis was employed to measure the protein levels of Akt, FOXO3, Beclin, Pi3k, mTOR, GSK-3β, and TORC2 in the myocardial histology of rabbits. Results showed that the body and heart weight of rabbits decreased significantly after suffering HF when compared with those in the control group. However, they gradually recovered after CCM application. The CCM significantly decreased collagen volume fraction in myocardial histology of HF rabbits, indicating that CCM therapy attenuated myocardial fibrosis and collagen deposition. The levels of Akt, FOXO3, Beclin, mTOR, GSK-3β, and TORC2 were significantly downregulated, but Pi3k concentration was greatly upregulated after CCM utilization. Based on these findings, it was concluded that CCM could elicit positive effects on HF therapy, which was potentially due to the variation in the Pi3k/Akt signaling pathway.
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