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1.
Curr Heart Fail Rep ; 19(3): 63-74, 2022 06.
Article in English | MEDLINE | ID: mdl-35403986

ABSTRACT

PURPOSE OF REVIEW: Heart failure with preserved ejection fraction (HFpEF) is a leading cause of morbidity and mortality. The current mechanistic paradigm supports a comorbidity-driven systemic proinflammatory state that evokes microvascular and myocardial dysfunction. Crucially, diabetes and obesity are frequently prevalent in HFpEF patients; as such, we review the involvement of a metabolic-inflammatory circuit in disease pathogenesis. RECENT FINDINGS: Experimental models of diastolic dysfunction and genuine models of HFpEF have facilitated discovery of underlying drivers of HFpEF, where metabolic derangement and systemic inflammation appear to be central components of disease pathophysiology. Despite a shared phenotype among these models, molecular signatures differ depending on type and combination of comorbidities present. Inflammation, oxidative stress, hypertension, and metabolic derangements have been positioned as therapeutic targets to suppress the metabolic-inflammatory circuit in HFpEF. However, the stratification of unique patient phenogroups within the collective HFpEF subgroup argues for specific interventions for distinct phenogroups.


Subject(s)
Cardiomyopathies , Heart Failure , Heart Failure/therapy , Humans , Inflammation , Stroke Volume/physiology , Ventricular Function, Left
2.
Cardiovasc Res ; 118(2): 517-530, 2022 01 29.
Article in English | MEDLINE | ID: mdl-33705529

ABSTRACT

AIMS: Hypertrophic cardiomyopathy (HCM) is characterized by cardiomyocyte hypertrophy and disarray, and myocardial stiffness due to interstitial fibrosis, which result in impaired left ventricular filling and diastolic dysfunction. The latter manifests as exercise intolerance, angina, and dyspnoea. There is currently no specific treatment for improving diastolic function in HCM. Here, we investigated whether myeloperoxidase (MPO) is expressed in cardiomyocytes and provides a novel therapeutic target for alleviating diastolic dysfunction in HCM. METHODS AND RESULTS: Human cardiomyocytes derived from control-induced pluripotent stem cells (iPSC-CMs) were shown to express MPO, with MPO levels being increased in iPSC-CMs generated from two HCM patients harbouring sarcomeric mutations in the MYBPC3 and MYH7 genes. The presence of cardiomyocyte MPO was associated with higher chlorination and peroxidation activity, increased levels of 3-chlorotyrosine-modified cardiac myosin binding protein-C (MYBPC3), attenuated phosphorylation of MYBPC3 at Ser-282, perturbed calcium signalling, and impaired cardiomyocyte relaxation. Interestingly, treatment with the MPO inhibitor, AZD5904, reduced 3-chlorotyrosine-modified MYBPC3 levels, restored MYBPC3 phosphorylation, and alleviated the calcium signalling and relaxation defects. Finally, we found that MPO protein was expressed in healthy adult murine and human cardiomyocytes, and MPO levels were increased in diseased hearts with left ventricular hypertrophy. CONCLUSION: This study demonstrates that MPO inhibition alleviates the relaxation defect in hypertrophic iPSC-CMs through MYBPC3 phosphorylation. These findings highlight cardiomyocyte MPO as a novel therapeutic target for improving myocardial relaxation associated with HCM, a treatment strategy which can be readily investigated in the clinical setting, given that MPO inhibitors are already available for clinical testing.


Subject(s)
Cardiomyopathy, Hypertrophic/drug therapy , Enzyme Inhibitors/pharmacology , Hypertrophy, Left Ventricular/drug therapy , Induced Pluripotent Stem Cells/drug effects , Myocardial Contraction/drug effects , Myocytes, Cardiac/drug effects , Peroxidase/antagonists & inhibitors , Ventricular Function, Left/drug effects , Animals , Cardiac Myosins/genetics , Cardiac Myosins/metabolism , Cardiomyopathy, Hypertrophic/enzymology , Cardiomyopathy, Hypertrophic/genetics , Cardiomyopathy, Hypertrophic/physiopathology , Carrier Proteins/genetics , Carrier Proteins/metabolism , Cell Line , Disease Models, Animal , Humans , Hypertrophy, Left Ventricular/enzymology , Hypertrophy, Left Ventricular/genetics , Hypertrophy, Left Ventricular/physiopathology , Induced Pluripotent Stem Cells/enzymology , Induced Pluripotent Stem Cells/pathology , Male , Mice, Inbred C57BL , Mutation, Missense , Myocytes, Cardiac/enzymology , Myocytes, Cardiac/pathology , Myosin Heavy Chains/genetics , Myosin Heavy Chains/metabolism , Peroxidase/metabolism , Phosphorylation , Reactive Oxygen Species/metabolism , Tyrosine/analogs & derivatives , Tyrosine/metabolism
3.
Cardiovasc Res ; 117(3): 694-711, 2021 02 22.
Article in English | MEDLINE | ID: mdl-32365198

ABSTRACT

Normal cardiac contractile and relaxation functions are critically dependent on a continuous energy supply. Accordingly, metabolic perturbations and impaired mitochondrial bioenergetics with subsequent disruption of ATP production underpin a wide variety of cardiac diseases, including diabetic cardiomyopathy, dilated cardiomyopathy, hypertrophic cardiomyopathy, anthracycline cardiomyopathy, peripartum cardiomyopathy, and mitochondrial cardiomyopathies. Crucially, there are no specific treatments for preventing the onset or progression of these cardiomyopathies to heart failure, one of the leading causes of death and disability worldwide. Therefore, new treatments are needed to target the metabolic disturbances and impaired mitochondrial bioenergetics underlying these cardiomyopathies in order to improve health outcomes in these patients. However, investigation of the underlying mechanisms and the identification of novel therapeutic targets have been hampered by the lack of appropriate animal disease models. Furthermore, interspecies variation precludes the use of animal models for studying certain disorders, whereas patient-derived primary cell lines have limited lifespan and availability. Fortunately, the discovery of human-induced pluripotent stem cells has provided a promising tool for modelling cardiomyopathies via human heart tissue in a dish. In this review article, we highlight the use of patient-derived iPSCs for studying the pathogenesis underlying cardiomyopathies associated with metabolic perturbations and impaired mitochondrial bioenergetics, as the ability of iPSCs for self-renewal and differentiation makes them an ideal platform for investigating disease pathogenesis in a controlled in vitro environment. Continuing progress will help elucidate novel mechanistic pathways, and discover novel therapies for preventing the onset and progression of heart failure, thereby advancing a new era of personalized therapeutics for improving health outcomes in patients with cardiomyopathy.


Subject(s)
Cardiomyopathies/metabolism , Energy Metabolism , Induced Pluripotent Stem Cells/metabolism , Mitochondria, Heart/metabolism , Myocytes, Cardiac/metabolism , Anthracyclines/toxicity , Cardiomyopathies/chemically induced , Cardiomyopathies/genetics , Cardiomyopathies/pathology , Cardiomyopathy, Dilated/genetics , Cardiomyopathy, Dilated/metabolism , Cardiomyopathy, Dilated/pathology , Cardiomyopathy, Hypertrophic/genetics , Cardiomyopathy, Hypertrophic/metabolism , Cardiomyopathy, Hypertrophic/pathology , Cardiotoxicity , Cell Differentiation , Cell Proliferation , Cells, Cultured , Diabetic Cardiomyopathies/genetics , Diabetic Cardiomyopathies/metabolism , Diabetic Cardiomyopathies/pathology , Female , Gene Expression Regulation , Humans , Induced Pluripotent Stem Cells/pathology , Mitochondria, Heart/pathology , Myocytes, Cardiac/pathology , Peripartum Period , Phenotype , Pregnancy , Pregnancy Complications, Cardiovascular/genetics , Pregnancy Complications, Cardiovascular/metabolism , Pregnancy Complications, Cardiovascular/pathology
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