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1.
Mol Metab ; 20: 102-114, 2019 02.
Article in English | MEDLINE | ID: mdl-30482476

ABSTRACT

OBJECTIVE: Congenital heart disease (CHD) is the most frequent birth defect worldwide. The number of adult patients with CHD, now referred to as ACHD, is increasing with improved surgical and treatment interventions. However the mechanisms whereby ACHD predisposes patients to heart dysfunction are still unclear. ACHD is strongly associated with metabolic syndrome, but how ACHD interacts with poor modern lifestyle choices and other comorbidities, such as hypertension, obesity, and diabetes, is mostly unknown. METHODS: We used a newly characterized mouse genetic model of ACHD to investigate the consequences and the mechanisms associated with combined obesity and ACHD predisposition. Metformin intervention was used to further evaluate potential therapeutic amelioration of cardiac dysfunction in this model. RESULTS: ACHD mice placed under metabolic stress (high fat diet) displayed decreased left ventricular ejection fraction. Comprehensive physiological, biochemical, and molecular analysis showed that ACHD hearts exhibited early changes in energy metabolism with increased glucose dependence as main cardiac energy source. These changes preceded cardiac dysfunction mediated by exposure to high fat diet and were associated with increased disease severity. Restoration of metabolic balance by metformin administration prevented the development of heart dysfunction in ACHD predisposed mice. CONCLUSIONS: This study reveals that early metabolic impairment reinforces heart dysfunction in ACHD predisposed individuals and diet or pharmacological interventions can be used to modulate heart function and attenuate heart failure. Our study suggests that interactions between genetic and metabolic disturbances ultimately lead to the clinical presentation of heart failure in patients with ACHD. Early manipulation of energy metabolism may be an important avenue for intervention in ACHD patients to prevent or delay onset of heart failure and secondary comorbidities. These interactions raise the prospect for a translational reassessment of ACHD presentation in the clinic.


Subject(s)
Heart Defects, Congenital/complications , Hypoglycemic Agents/therapeutic use , Metabolic Syndrome/drug therapy , Metformin/therapeutic use , Ventricular Dysfunction, Left/prevention & control , Animals , Cardiac Output , Energy Metabolism , Hypoglycemic Agents/administration & dosage , Male , Metabolic Syndrome/complications , Metformin/administration & dosage , Mice , Mice, Inbred C57BL , Ventricular Dysfunction, Left/drug therapy , Ventricular Dysfunction, Left/etiology
2.
JCI Insight ; 2(6): e88271, 2017 03 23.
Article in English | MEDLINE | ID: mdl-28352650

ABSTRACT

Mutations in the Nkx2-5 gene are a main cause of congenital heart disease. Several studies have addressed the phenotypic consequences of disrupting the Nkx2-5 gene locus, although animal models to date failed to recapitulate the full spectrum of the human disease. Here, we describe a new Nkx2-5 point mutation murine model, akin to its human counterpart disease-generating mutation. Our model fully reproduces the morphological and physiological clinical presentations of the disease and reveals an understudied aspect of Nkx2-5-driven pathology, a primary right ventricular dysfunction. We further describe the molecular consequences of disrupting the transcriptional network regulated by Nkx2-5 in the heart and show that Nkx2-5-dependent perturbation of the Wnt signaling pathway promotes heart dysfunction through alteration of cardiomyocyte metabolism. Our data provide mechanistic insights on how Nkx2-5 regulates heart function and metabolism, a link in the study of congenital heart disease, and confirms that our models are the first murine genetic models to our knowledge to present all spectra of clinically relevant adult congenital heart disease phenotypes generated by NKX2-5 mutations in patients.


Subject(s)
Disease Models, Animal , Heart Defects, Congenital/genetics , Homeobox Protein Nkx-2.5/genetics , Point Mutation , Wnt Signaling Pathway/genetics , Animals , Gene Regulatory Networks , Heart/physiopathology , Heart Defects, Congenital/physiopathology , Homeobox Protein Nkx-2.5/metabolism , Humans , Mice , Mice, Transgenic , Phenotype
3.
Differentiation ; 91(1-3): 29-41, 2016.
Article in English | MEDLINE | ID: mdl-26897459

ABSTRACT

Nkx2-5 is one of the master regulators of cardiac development, homeostasis and disease. This transcription factor has been previously associated with a suite of cardiac congenital malformations and impairment of electrical activity. When disease causative mutations in transcription factors are considered, NKX2-5 gene dysfunction is the most common abnormality found in patients. Here we describe a novel mouse model and subsequent implications of Nkx2-5 loss for aspects of myocardial electrical activity. In this work we have engineered a new Nkx2-5 conditional knockout mouse in which flox sites flank the entire Nkx2-5 locus, and validated this line for the study of heart development, differentiation and disease using a full deletion strategy. While our homozygous knockout mice show typical embryonic malformations previously described for the lack of the Nkx2-5 gene, hearts of heterozygous adult mice show moderate morphological and functional abnormalities that are sufficient to sustain blood supply demands under homeostatic conditions. This study further reveals intriguing aspects of Nkx2-5 function in the control of cardiac electrical activity. Using a combination of mouse genetics, biochemistry, molecular and cell biology, we demonstrate that Nkx2-5 regulates the gene encoding Kcnh2 channel and others, shedding light on potential mechanisms generating electrical abnormalities observed in patients bearing NKX2-5 dysfunction and opening opportunities to the study of novel therapeutic targets for anti-arrhythmogenic therapies.


Subject(s)
ERG1 Potassium Channel/genetics , Heart Defects, Congenital/genetics , Heart/growth & development , Homeobox Protein Nkx-2.5/genetics , Animals , Disease Models, Animal , ERG1 Potassium Channel/metabolism , Gene Expression Regulation, Developmental , Heart/embryology , Heart/physiopathology , Heart Defects, Congenital/physiopathology , Humans , Ion Channels/genetics , Ion Channels/metabolism , Mice , Mice, Knockout , Mutation
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