Interaction between alveolar diffusing capacity and B-lines in heart failure with preserved ejection fraction - A
Maurizio Losito1, Valeria Luberto1, Giulia Crisci1
1Cardiology Unit, ASST Santi Paolo e Carlo, Department of Health Sciences, University of Milan, Milan, Italy.
International Journal of Cardiology
|April 4, 2026
Summary
Heart failure with preserved ejection fraction (HFpEF) patients show reduced lung diffusing capacity and increased lung fluid during exercise. These factors together impact exercise performance in HFpEF.
Area of Science:
- Cardiology
- Pulmonary Medicine
- Exercise Physiology
Background:
- Heart failure with preserved ejection fraction (HFpEF) is characterized by elevated left atrial pressures.
- Exercise exacerbates pulmonary venous pressures and lung interstitial fluid accumulation in HFpEF patients.
- The relationship between resting pulmonary diffusing capacity and exercise-induced pulmonary congestion in HFpEF has not been fully explored.
Purpose of the Study:
- To investigate the association between resting pulmonary diffusing capacity and exercise-induced pulmonary congestion in patients with HFpEF.
- To analyze the subcomponents of pulmonary diffusing capacity, including alveolar-capillary membrane conductance (Dm) and capillary volume (Vcap).
Main Methods:
- Studied 40 stable HFpEF patients and healthy controls.
- Measured lung diffusing capacity for carbon monoxide (DLCO), Dm, and Vcap at rest.
- Assessed lung interstitial fluid (B-lines) and left ventricular filling pressures during combined Stress Echocardiography and Cardiopulmonary Exercise Test (ESE-CPET).
Main Results:
- HFpEF patients had lower resting DLCO and Dm compared to controls.
- HFpEF patients exhibited increased peak exercise B-lines, significantly correlated with resting DLCO and Dm.
- Resting Dm correlated negatively with VE/VCO2 slope and E/e' at peak exercise, indicating ventilatory/perfusion mismatch and elevated filling pressures.
Conclusions:
- Altered resting pulmonary gas exchange capacity and excessive lung extravascular water contribute to impaired exercise performance in HFpEF.
- Further mechanistic studies are needed to elucidate the cause-effect relationship between these physiological variables in HFpEF.
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