ArticleBasic research in cardiology2025
A new model of heart failure with preserved ejection fraction induced by metabolic syndrome in Ossabaw miniature swine.
Article in Basic research in cardiology, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 8 papers.
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Who cites it
8 citing papers in PubMed.
- Molecular mechanisms of coronary microembolization-induced MINOCA.Basic research in cardiology · 2026Review
- Galectin-3, transforming growth factor beta 1, and brain natriuretic peptide in cardiac remodeling under hyperlipidemic and hyperglycemic stress.Molecular and cellular biochemistry · 2026Article
- Cardiometabolic Effects of Traditional South Asian Diets and the Growing Burden of Metabolic Syndrome.Archives of internal medicine research · 2026Article
- A narrative review of behavioral tests across mammalian models in neuroscience.Behavioral and brain functions : BBF · 2026Review
- Transforming Toxicity into Therapy: Exploring Bilirubin's Benefits and Its Molecular Role in Cardiac Health and Disease.Biomolecules · 2026Review
- Study of the Relationship Between the Number of Metabolic Syndrome Components and Subclinical Cardiac Dysfunction: A Retrospective Analysis.Journal of clinical medicine · 2026Article
- Experimental Models for Studying Cardiovascular Dysfunction in Metabolic Syndrome.Handbook of experimental pharmacology · 2026Review
- When in doubt, pig it out: a versatile translational platform to study CKD, HFpEF, and CKM syndrome.American journal of physiology. Heart and circulatory physiology · 2025Review
Corrections and comments
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Authors and funding
8 authors.
Funding
Abstract
A major obstacle to progress in heart failure with preserved ejection fraction (HFpEF) is the paucity of clinically relevant animal models. We developed a large, translationally relevant model in Ossabaw minipigs, which are genetically predisposed to the metabolic syndrome (MetS). Pigs were fed a "Western diet" high in calories, fructose, fat, cholesterol, and salt and received 1-2 deoxy-corticosterone acetate (DOCA) depots (n = 10). After 6 months, they exhibited liver function abnormalities and marked increases in body weight, arterial blood pressure, serum cholesterol and triglycerides, and plasma glucose and insulin levels (glucose tolerance test), indicating the development of a full MetS. Echocardiography demonstrated no change in LV ejection fraction but progressive concentric LV hypertrophy and left atrial dilatation. Doppler echocardiography showed increased E/e' ratio and increased peak early (E) and peak late atrial (A) transmitral inflow velocities, with no change in E/A ratio. Right heart catheterization demonstrated increased central venous pressure, pulmonary arterial systolic pressure, and pulmonary capillary wedge pressure. Clinically, pigs exhibited impaired exercise capacity, assessed by treadmill tests, associated with chronotropic incompetence. Pathologic examination showed significant myocardial fibrosis, myocyte hypertrophy, and liver fibrosis. In contrast, lean pigs fed a standard diet (n = 3) did not show any changes at 6 months. The Ossabaw porcine model described herein is unique in that it recapitulates the entire constellation of major multiorgan comorbidities and hemodynamic, clinical, and metabolic features of MetS-driven human HFpEF: obesity, arterial hypertension, hyperlipidemia, glucose intolerance, insulin resistance, liver fibrosis and dysfunction, pulmonary hypertension, increased LV filling pressures, concentric LV hypertrophy, LV diastolic dysfunction with preserved systolic function, and impaired exercise capacity. Because of its high clinical relevance, this model is well-suited for exploring the pathophysiology of MetS-driven HFpEF and the efficacy of new therapies.
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