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Isolation and Functional Characterization of Human Ventricular Cardiomyocytes from Fresh Surgical Samples
Published on: April 21, 2014
Integrating Clinical Phenotype With Multiomics Analyses of Human Cardiac Tissue Unveils Divergent Metabolic
Edgar E Nollet1,2, Maike Schuldt1,2, Vasco Sequeira3
1Department of Physiology (E.E.N., M.S., D.W.D.K., J.v.d.V.), Amsterdam UMC, the Netherlands.
Insights
Hypertrophic cardiomyopathy (HCM) involves distinct metabolic shifts. Genotype-negative HCM shows correlations between cardiac remodeling and reduced metabolites, while genotype-positive HCM links them to increased metabolites.
Area of Science:
- Cardiovascular Research
- Metabolomics
- Genetics
Background:
- Hypertrophic cardiomyopathy (HCM) has genetic (genotype-positive) and non-genetic (genotype-negative) forms.
- Understanding metabolic and lipidomic changes is crucial for elucidating cardiac remodeling in HCM.
Purpose of the Study:
- To explore metabolomic and lipidomic alterations in cardiac remodeling in both genotype-positive and genotype-negative HCM patients.
- To integrate multi-omics data and link metabolic changes to clinical phenotypes.
Main Methods:
- Proteomics, metabolomics, and lipidomics were performed on myectomy samples from HCM patients and donor hearts.
- Data integration was used to map changes in lipid handling and energy metabolism.
- Metabolic data were correlated with clinical parameters like septal hypertrophy and diastolic dysfunction.
Main Results:
- HCM samples showed increased glucose/glycogen metabolism and reduced fatty acid oxidation and ceramide formation.
- Genotype-negative HCM correlated with decreased acylcarnitines, redox metabolites, amino acids, and purines/pyrimidines.
- Genotype-positive HCM showed positive associations between cardiac remodeling and these metabolites.
Conclusions:
- Novel insights into general and genotype-specific metabolic changes in HCM were provided.
- Distinct metabolic alterations contribute to cardiac disease progression in different HCM genotypes.
Background:
Hypertrophic cardiomyopathy (HCM) is caused by sarcomere gene mutations (genotype-positive HCM) in ≈50% of patients and occurs in the absence of mutations (genotype-negative HCM) in the other half of patients. We explored how alterations in the metabolomic and lipidomic landscape are involved in cardiac remodeling in both patient groups.
Methods:
We performed proteomics, metabolomics, and lipidomics on myectomy samples (genotype-positive N=19; genotype-negative N=22; and genotype unknown N=6) from clinically well-phenotyped patients with HCM and on cardiac tissue samples from sex- and age-matched and body mass index-matched nonfailing donors (N=20). These data sets were integrated to comprehensively map changes in lipid-handling and energy metabolism pathways. By linking metabolomic and lipidomic data to variability in clinical data, we explored patient group-specific associations between cardiac and metabolic remodeling.
Results:
HCM myectomy samples exhibited (1) increased glucose and glycogen metabolism, (2) downregulation of fatty acid oxidation, and (3) reduced ceramide formation and lipid storage. In genotype-negative patients, septal hypertrophy and diastolic dysfunction correlated with lowering of acylcarnitines, redox metabolites, amino acids, pentose phosphate pathway intermediates, purines, and pyrimidines. In contrast, redox metabolites, amino acids, pentose phosphate pathway intermediates, purines, and pyrimidines were positively associated with septal hypertrophy and diastolic impairment in genotype-positive patients.
Conclusions:
We provide novel insights into both general and genotype-specific metabolic changes in HCM. Distinct metabolic alterations underlie cardiac disease progression in genotype-negative and genotype-positive patients with HCM.
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Cardiomyopathy V: Interprofessional Care

