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Coronary Progenitor Cells and Soluble Biomarkers in Cardiovascular Prognosis after Coronary Angioplasty
Published on: January 28, 2020
Untargeted high-resolution plasma metabolomic profiling predicts outcomes in patients with coronary artery disease
Anurag Mehta1, Chang Liu1,2, Aditi Nayak1
1Emory Clinical Cardiovascular Research Institute, Division of Cardiology, Department of Medicine, Emory University School of Medicine, Atlanta, Georgia.
Insights
Plasma metabolomic profiling identified key metabolic pathways linked to mortality in coronary artery disease (CAD) patients. A novel risk score using these metabolites accurately predicts mortality, improving risk assessment for cardiovascular disease.
Area of Science:
- Cardiovascular Disease
- Metabolomics
- Biomarkers
Background:
- Patients with coronary artery disease (CAD) face significant residual mortality risk.
- The contribution of unknown small-molecule metabolites and metabolic pathways to this risk is not well understood.
Purpose of the Study:
- To investigate the predictive value of plasma metabolomic profiling in patients with CAD.
- To identify specific metabolites and metabolic pathways associated with mortality in CAD patients.
Main Methods:
- Untargeted, high-resolution plasma metabolomic profiling using liquid chromatography/mass spectrometry.
- Metabolome-wide association studies and pathway analysis (Mummichog) to identify mortality-associated features.
- Development and validation of a metabolomic risk score based on mortality-associated metabolites.
Main Results:
- Six metabolic pathways (urea cycle/amino group, tryptophan, aspartate/asparagine, lysine, tyrosine, carnitine shuttle) were consistently associated with mortality.
- A 7-metabolite risk score independently predicted mortality in a validation cohort (HR 2.14).
- The risk score enhanced risk prediction models, improving discrimination and reclassification of mortality risk.
Conclusions:
- Differential regulation of metabolic pathways involved in myocardial energetics and systemic inflammation is linked to mortality in CAD.
- A novel metabolomic risk score is highly predictive of mortality in CAD patients.
- Metabolomic profiling offers a promising approach for refining risk stratification in cardiovascular disease.
Objective:
Patients with CAD have substantial residual risk of mortality, and whether hitherto unknown small-molecule metabolites and metabolic pathways contribute to this risk is unclear. We sought to determine the predictive value of plasma metabolomic profiling in patients with CAD.
Approach And Results:
Untargeted high-resolution plasma metabolomic profiling of subjects undergoing coronary angiography was performed using liquid chromatography/mass spectrometry. Metabolic features and pathways associated with mortality were identified in 454 subjects using metabolome-wide association studies and Mummichog, respectively, and validated in 322 subjects. A metabolomic risk score comprising of log-transformed HR estimates of metabolites that associated with mortality and passed LASSO regression was created and its performance validated. In 776 subjects (66.8 years, 64% male, 17% Black), 433 and 357 features associated with mortality (FDR-adjusted q<0.20); and clustered into 21 and 9 metabolic pathways in first and second cohorts, respectively. Six pathways (urea cycle/amino group, tryptophan, aspartate/asparagine, lysine, tyrosine, and carnitine shuttle) were common. A metabolomic risk score comprising of 7 metabolites independently predicted mortality in the second cohort (HR per 1-unit increase 2.14, 95%CI 1.62, 2.83). Adding the score to a model of clinical predictors improved risk discrimination (delta C-statistic 0.039, 95%CI -0.006, 0.086; and Integrated Discrimination Index 0.084, 95%CI 0.030, 0.151) and reclassification (continuous Net Reclassification Index 23.3%, 95%CI 7.9%, 38.2%).
Conclusions:
Differential regulation of six metabolic pathways involved in myocardial energetics and systemic inflammation is independently associated with mortality in patients with CAD. A novel risk score consisting of representative metabolites is highly predictive of mortality.
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