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Updated: Jan 19, 2026

Lumped-Parameter and Finite Element Modeling of Heart Failure with Preserved Ejection Fraction
Published on: February 13, 2021
Arterial Remodeling and Dysfunction in the ZSF1 Rat Model of Heart Failure With Preserved Ejection Fraction
Sara Leite1, Rui J Cerqueira1,2, Jaime Ibarrola3
1Department of Surgery and Physiology, Faculty of Medicine, University of Porto, Portugal (S.L., R.C., D.F., I.F.-P., A.F.L.-M., A.P.L.).
Insights
Obesity exacerbates hypertension-induced vascular stiffening, leading to heart failure with preserved ejection fraction (HFpEF) in ZSF1 rats. This study reveals key molecular pathways involved in aortic remodeling in HFpEF.
Area of Science:
- Cardiovascular Physiology
- Vascular Biology
- Hypertension Research
Background:
- Heart failure with preserved ejection fraction (HFpEF) is linked to stiffened heart and vessels.
- Mechanisms of vascular remodeling in HFpEF progression from hypertension are understudied.
Purpose of the Study:
- To characterize central arterial remodeling and dysfunction in obese ZSF1 rats.
- To compare vascular changes in obese ZSF1 rats with lean hypertensive ZSF1 rats and Wistar-Kyoto controls.
Main Methods:
- Utilized pressure-volume loops and aortic ring functional studies in 20-week-old male rats (ZSF1 obese, ZSF1 lean, Wistar-Kyoto).
- Performed histology and molecular biology analyses on aortic tissues.
- Assessed vascular reactivity, compliance, and wave reflection.
Main Results:
- Obese ZSF1 rats exhibited impaired aortic relaxation and diastolic dysfunction, indicative of HFpEF, despite preserved systolic function.
- Hypertension-induced changes (pressure, impedance, phenylephrine reactivity) were similar in lean and obese ZSF1 rats.
- Obese ZSF1 rats showed decreased aortic compliance, increased wave reflection, impaired vasodilation, aortic media thickening, elevated collagen and fibronectin, and upregulated TGF-β and CTGF.
Conclusions:
- Newly characterized functional, molecular, and structural disturbances in central vessels of ZSF1 obese rats.
- Identified underlying pathways contributing to experimental HFpEF.
- The ZSF1 obese rat model is suitable for preclinical testing of HFpEF therapies.
Background:
The interplay between the stiffened heart and vessels has long been viewed as a core mechanism in heart failure with preserved ejection fraction, but the incremental vascular molecular remodeling mechanisms from systemic arterial hypertension to heart failure with preserved ejection fraction remain poorly investigated. Our aim was to characterize central arterial remodeling and dysfunction in ZSF1 obese rats and to compare it with hypertensive ZSF1 lean and healthy Wistar-Kyoto controls.
Methods And Results:
Twenty-week-old male ZSF1 obese (n=9), lean (n=9), and Wistar-Kyoto rats (n=9) underwent left ventricular pressure-volume loop evaluation and synchronous acquisition of ascending aortic flow and pressure. Aortic rings underwent functional evaluation, histology, and molecular biology studies. Although mean arterial pressure, characteristic aortic impedance, and reactivity to phenylephrine were similarly increased in hypertensive ZSF1 lean and obese, only ZSF1 obese showed impaired relaxation and upward-shifted end-diastolic pressure-volume relationships despite preserved systolic function indexes, denoting heart failure with preserved ejection fraction. ZSF1 obese phenotype further showed decreased aortic compliance, increased wave reflection, and impaired direct NO donor and endothelial-mediated vasodilation which were accompanied on structural and molecular grounds by aortic media thickening, higher collagen content and collagen/elastin ratio, increased fibronectin and α-5 integrin protein expression and upregulated TGF (transforming growth factor)-β and CTGF (connective tissue growth factor) levels.
Conclusions:
Functional, molecular, and structural disturbances of central vessels and their potentially underlying pathways were newly characterized in experimental heart failure with preserved ejection fraction rendering the ZSF1 obese rat model suitable for preclinical testing.
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