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Published on: August 17, 2022
A sex-specific perspective on coronary microvascular dysfunction in HFpEF: from vascular to myocardial disease
Anne-Sophie Roy1, E Marc Jolicoeur1, Lyne Bérubé1
1Department of Cardiology and Cardiac Surgery, Centre Hospitalier de L'Université de Montréal (CHUM) and Université de Montréal, 1000, Saint-Denis Street, Montréal, Québec, H2X 0C1, Canada.
Insights
Coronary microvascular dysfunction (CMD) is central to heart failure with preserved ejection fraction (HFpEF). Sex-specific pathways significantly influence disease development and progression, impacting diagnosis and treatment.
Area of Science:
- Cardiology
- Vascular Biology
- Sex Differences in Medicine
Background:
- Heart failure with preserved ejection fraction (HFpEF) is the most common type of heart failure, presenting significant morbidity and limited treatment options.
- Coronary microvascular dysfunction (CMD) is increasingly recognized as a key mechanism linking cardiometabolic conditions to HFpEF.
- HFpEF disproportionately affects women, but the underlying biological reasons for this sex disparity are not fully understood.
Purpose of the Study:
- To review the mechanistic role of CMD in HFpEF.
- To focus on sex-specific biological pathways influencing HFpEF.
- To explore how understanding sex differences in CMD can improve HFpEF management.
Main Methods:
- Narrative review of current scientific evidence.
- Synthesis of data on CMD pathophysiology in HFpEF.
- Analysis of sex-specific biological mechanisms in HFpEF.
Main Results:
- CMD contributes to myocardial stiffening, energetic inefficiency, and diastolic dysfunction in HFpEF.
- Sex differences in vascular biology, immune-metabolic signaling, and hormonal regulation impact CMD susceptibility and HFpEF progression.
- Females show higher CMD prevalence without obstructive coronary artery disease and accelerated stiffening post-menopause, while males exhibit different remodeling patterns.
Conclusions:
- CMD is a critical factor in HFpEF pathogenesis, with significant sex-based variations.
- Sex-specific understanding of CMD is crucial for developing targeted diagnostic and therapeutic strategies for HFpEF.
- Further research into sex-modified CMD pathways can lead to precision medicine approaches for HFpEF.
Abstract:
Heart failure with preserved ejection fraction (HFpEF) is the most prevalent form of heart failure and is characterized by high morbidity, limited therapeutic options, and marked biological heterogeneity. Coronary microvascular dysfunction (CMD) has emerged as a central pathophysiological mechanism linking cardiometabolic comorbidities to myocardial remodeling and clinical HFpEF phenotypes. Impaired coronary flow reserve, endothelial dysfunction, reduced nitric oxide bioavailability, and microvascular rarefaction contribute to myocardial stiffening, energetic inefficiency, and ultimately diastolic dysfunction, often preceding overt structural heart disease in the setting of HFpEF. Notably, HFpEF disproportionately affects females, yet the biological mechanisms underlying this sex difference remain incompletely understood. Accumulating evidence suggests that sex-specific differences in vascular biology, immune-metabolic signaling, hormonal regulation, and myocardial-vascular coupling modulate susceptibility to CMD and influence the progression from vascular dysfunction to myocardial disease. Females exhibit a higher prevalence of CMD in the absence of obstructive coronary artery disease, distinct inflammatory and metabolic profiles, and accelerated vascular and ventricular stiffening, particularly after menopause. In contrast, males more frequently display eccentric remodeling and obstructive epicardial coronary disease. This narrative review synthesizes current evidence on the mechanistic role of CMD in HFpEF, with a specific focus on sex-specific biological pathways that shape disease trajectory. Understanding how sex modifies CMD may inform improved diagnostic strategies, risk stratification, and the development of precision-based therapeutic approaches in HFpEF.
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