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Permanent Ligation of the Left Anterior Descending Coronary Artery in Mice: A Model of Post-myocardial Infarction Remodelling and Heart Failure
Published on: December 2, 2014
A novel paradigm for heart failure with preserved ejection fraction: comorbidities drive myocardial dysfunction and
Walter J Paulus1, Carsten Tschöpe
1Department of Physiology, Institute for Cardiovascular Research VU, VU University Medical Center Amsterdam, Amsterdam, the Netherlands. wj.paulus@vumc.nl
Insights
Comorbidities trigger systemic inflammation, leading to coronary microvascular inflammation and heart failure with preserved ejection fraction (HFPEF). This new paradigm focuses on inflammation
Area of Science:
- Cardiology
- Pathophysiology
- Biomedical Science
Background:
- Heart failure with preserved ejection fraction (HFPEF) involves altered myocardial structure, cardiomyocyte function, and signaling.
- Existing understanding of HFPEF lacks a comprehensive developmental paradigm.
Purpose of the Study:
- Propose a new paradigm for HFPEF development.
- Identify systemic inflammation from comorbidities as a key driver of HFPEF.
- Shift focus from left ventricular (LV) afterload to coronary microvascular inflammation.
Main Methods:
- Review of existing research on HFPEF pathophysiology.
- Analysis of the sequence of events linking comorbidities to HFPEF.
- Comparison of HFPEF remodeling with heart failure with reduced ejection fraction.
Main Results:
- Comorbidities (obesity, diabetes, hypertension) induce systemic inflammation.
- Systemic inflammation causes coronary microvascular endothelial inflammation.
- Reduced nitric oxide, cyclic guanosine monophosphate, and protein kinase G (PKG) activity in cardiomyocytes contribute to LV stiffness and HFPEF.
Conclusions:
- A novel paradigm links comorbidities, systemic inflammation, and coronary microvascular dysfunction to HFPEF.
- HFPEF pathogenesis involves stiff cardiomyocytes and interstitial fibrosis, not primarily cardiomyocyte loss.
- Future diagnostics and therapeutics should target inflammation and aim to restore myocardial PKG activity.
Abstract:
Over the past decade, myocardial structure, cardiomyocyte function, and intramyocardial signaling were shown to be specifically altered in heart failure with preserved ejection fraction (HFPEF). A new paradigm for HFPEF development is therefore proposed, which identifies a systemic proinflammatory state induced by comorbidities as the cause of myocardial structural and functional alterations. The new paradigm presumes the following sequence of events in HFPEF: 1) a high prevalence of comorbidities such as overweight/obesity, diabetes mellitus, chronic obstructive pulmonary disease, and salt-sensitive hypertension induce a systemic proinflammatory state; 2) a systemic proinflammatory state causes coronary microvascular endothelial inflammation; 3) coronary microvascular endothelial inflammation reduces nitric oxide bioavailability, cyclic guanosine monophosphate content, and protein kinase G (PKG) activity in adjacent cardiomyocytes; 4) low PKG activity favors hypertrophy development and increases resting tension because of hypophosphorylation of titin; and 5) both stiff cardiomyocytes and interstitial fibrosis contribute to high diastolic left ventricular (LV) stiffness and heart failure development. The new HFPEF paradigm shifts emphasis from LV afterload excess to coronary microvascular inflammation. This shift is supported by a favorable Laplace relationship in concentric LV hypertrophy and by all cardiac chambers showing similar remodeling and dysfunction. Myocardial remodeling in HFPEF differs from heart failure with reduced ejection fraction, in which remodeling is driven by loss of cardiomyocytes. The new HFPEF paradigm proposes comorbidities, plasma markers of inflammation, or vascular hyperemic responses to be included in diagnostic algorithms and aims at restoring myocardial PKG activity.
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