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May 15, 2026Physiological Reports0 citationsOpen Access

A new model of heart failure with preserved ejection fraction using external radiation therapy in male rats

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MGMona GuetlinHRHanan RidaCSChristophe Simard

Key Result

Targeted cardiac irradiation in male rats induced a reproducible HFpEF-like phenotype, including significant diastolic dysfunction and a 25% reduction in exercise tolerance at 5 months.

Key Points

  • To develop a preclinical model of heart failure with preserved ejection fraction (HFpEF) using targeted cardiac irradiation.
  • Male Sprague-Dawley rats were randomized to receive cardiac irradiation at 10 or 20 Gy, or no irradiation.
  • Cardiac structure and function were assessed using echocardiography and invasive pressure-volume analysis.
  • Histological and biochemical methods analyzed myocardial fibrosis, inflammation, and oxidative stress.
  • Irradiated rats developed significant diastolic dysfunction with increased left ventricular end-diastolic pressure and prolonged relaxation time.
  • Exercise tolerance decreased by approximately 25% at 5 months post-irradiation.
  • Histological analysis showed increased interstitial and perivascular fibrosis with elevated collagen I expression and increased macrophage infiltration.

Study Design

Type

RCT

Randomization

randomized

Structured PICO

Does targeted cardiac irradiation induce a heart failure with preserved ejection fraction (HFpEF) phenotype in male Sprague-Dawley rats?

P
Population
Male Sprague-Dawley rats
I
Intervention
Targeted cardiac irradiation at 10 or 20 Gy
C
Comparator
No irradiation
O
Outcome
Cardiac structure and function (assessed by echocardiography and invasive pressure-volume analysis), exercise capacity, myocardial fibrosis, inflammation, and oxidative stresssurrogate

Targeted cardiac irradiation in rats induces a reproducible HFpEF-like phenotype, providing a novel preclinical model for studying HFpEF pathophysiology and radiation-induced cardiotoxicity.

Abstract

Heart failure with preserved ejection fraction (HFpEF) accounts for nearly half of heart failure cases and is characterized by diastolic dysfunction, myocardial fibrosis, inflammation, and endothelial alterations. However, relevant preclinical models remain limited. As chest radiotherapy induces cardiac fibrosis and endothelial injury, we hypothesized that targeted cardiac irradiation could reproduce key features of HFpEF. Male Sprague-Dawley rats were randomized to receive cardiac irradiation at 10 or 20 Gy, or no irradiation. Cardiac structure and function were assessed longitudina ly by echocardiography and invasive pressure-volume Disclaimer: This is a confidential document. analysis, and exercise capacity was evaluated using a treadmil test. Myocardial fibrosis, inflammation, and oxidative stress were analyzed by histological and biochemical methods. Irradiated rats preserved systolic function but developed significant diastolic dysfunction, with increased left ventricular end-diastolic pressure and prolonged relaxation time constant. Exercise tolerance was reduced by approximately 25% at 5 months. Histological analyses revealed increased interstitial and perivascular fibrosis with elevated co lagen I expression. CD68-positive macrophage infiltration was markedly increased, whereas CD163-positive ce ls were unchanged. Oxidative stress was evidenced by reduced superoxide dismutase activity and increased protein carbonylation. Targeted cardiac irradiation therefore induces a reproducible HFpEF-like phenotype, providing a relevant model to investigate HFpEF pathophysiology and radiation-induced cardiotoxicity.

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Cite This Study

Guetlin et al. (2026) conducted an RCT in Heart failure with preserved ejection fraction (HFpEF). Targeted cardiac irradiation vs. no irradiation was evaluated on Cardiac structure and function, exercise capacity, myocardial fibrosis, inflammation, and oxidative stress. Targeted cardiac irradiation in male rats induced a reproducible HFpEF-like phenotype, including significant diastolic dysfunction and a 25% reduction in exercise tolerance at 5 months.

synapsesocial.com/papers/6a06b998e7dec685947ac4dbhttps://doi.org/10.14814/phy2.70900
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