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Updated: Nov 6, 2025

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Apelin improves cardiac function mainly through peripheral vasodilation in a mouse model of dilated cardiomyopathy
Brahim El Mathari1, Pascale Briand1, Alain Corbier1
1Cardiovascular & Metabolism Therapeutic Area, Sanofi R&D, 1 avenue Pierre Brossolette, 91385, Chilly-Mazarin, France.
Insights
Apelin peptide [Pyr1]apelin-13 improved cardiac function in a mouse model of dilated cardiomyopathy by lowering vascular resistance, not by directly enhancing heart muscle contractility.
Area of Science:
- Cardiovascular Physiology
- Pharmacology
Background:
- Apelin is implicated in cardiovascular regulation, potentially affecting myocardial contractility and vasodilation.
- Its precise role in pathological conditions like cardiomyopathy, particularly regarding load-dependence, remains unclear.
Purpose of the Study:
- To investigate the cardiovascular effects of [Pyr1]apelin-13 in a mouse model of dilated cardiomyopathy (DCM).
- To determine if apelin improves cardiac contractility in a load-dependent or independent manner in this pathological model.
Main Methods:
- Utilized alpha-actin transgenic mice (mActin-Tg) exhibiting a DCM phenotype.
- Administered [Pyr1]apelin-13 via continuous infusion for 3 weeks.
- Assessed cardiac function using echocardiography and Pressure-Volume (PV) analysis.
Main Results:
- mActin-Tg mice showed systolic impairment (reduced ejection fraction, cardiac output, stroke volume) and diastolic dysfunction.
- [Pyr1]apelin-13 treatment improved ejection fraction, stroke volume, and diastolic parameters (E/A, DT).
- Treatment corrected elevated total peripheral vascular resistance (TPR) but did not alter blood pressure, heart rate, or load-independent contractility.
Conclusions:
- [Pyr1]apelin-13 ameliorated cardiac dysfunction in a DCM model primarily by reducing peripheral vascular resistance.
- The peptide demonstrated no intrinsic myocardial contractile effect.
- Apelin's beneficial effects in this cardiomyopathy model are mediated through vasodilation rather than direct inotropic action.
Abstract:
There is growing evidence that apelin plays a role in the regulation of the cardiovascular system by increasing myocardial contractility and acting as a vasodilator. However, it remains unclear whether apelin improves cardiac contractility in a load-dependent or independent manner in pathological conditions. For this purpose we investigated the cardiovascular effects of apelin in α-actin transgenic mice (mActin-Tg mice), a model of cardiomyopathy. [Pyr1]apelin-13 was administered by continuous infusion at 2 mg/kg/d for 3 weeks. Effects on cardiac function were determined by echocardiography and a Pressure-Volume (PV) analysis. mActin-Tg mice showed a dilated cardiomyopathy (DCM) phenotype similar to that encountered in patients expressing the same mutation. Compared to WT animals, mActin-Tg mice displayed cardiac systolic impairment [significant decrease in ejection fraction (EF), cardiac output (CO), and stroke volume (SV)] associated with cardiac ventricular dilation and diastolic dysfunction, characterized by an impairment in mitral flow velocity (E/A) and in deceleration time (DT). Load-independent myocardial contractility was strongly decreased in mActin-Tg mice while total peripheral vascular resistance (TPR) was significantly increased. As compared to vehicle-treated animals, a 3-week treatment with [Pyr1]apelin-13 significantly improved EF%, SV, E/A, DT and corrected TPR, with no significant effect on load-independent indices of myocardial contractility, blood pressure and heart rate. In conclusion [Pyr1]apelin-13 displayed no intrinsic contractile effect but improved cardiac function in dilated cardiomyopathy mainly by reducing peripheral vascular resistance, with no change in blood pressure.

