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Metabolic Signatures in Coronary Artery Disease: Results from the BioHEART-CT Study
Stephen T Vernon1,2,3, Owen Tang1,3,4, Taiyun Kim4,5,6
1Cardiothoracic and Vascular Health, Kolling Institute, Northern Sydney Local Health District, Sydney, NSW 2065, Australia.
Insights
New research identifies specific plasma metabolites linked to coronary artery disease (CAD) plaque characteristics. These findings could lead to better biomarkers for cardiovascular disease risk stratification and prevention.
Area of Science:
- Cardiovascular Research
- Metabolomics
- Biomarker Discovery
Background:
- Coronary artery disease (CAD) remains a leading cause of mortality despite existing prevention strategies.
- There is a critical need for novel biomarkers to enhance risk stratification and primary prevention of CAD.
- Understanding the relationship between metabolites and CAD plaque phenotypes is crucial for developing new diagnostic and therapeutic approaches.
Purpose of the Study:
- To investigate the independent associations between specific plasma metabolites and various coronary artery disease (CAD) plaque phenotypes.
- To identify novel metabolic biomarkers for improved CAD risk assessment.
- To explore the role of metabolic pathways in CAD development, independent of traditional risk factors.
Main Methods:
- Liquid chromatography-mass spectrometry was employed to analyze plasma samples from 1002 patients in the BioHEART-CT study.
- Four candidate metabolites (dimethylguanidino valerate, glutamate, phenylalanine, and trimethylamine N-oxide) were assessed for associations with CAD plaque characteristics.
- Targeted metabolomic analyses and multivariate analyses were conducted to identify significant associations and metabolic pathways.
Main Results:
- Dimethylguanidino valerate (DMGV) showed significant associations with the presence, amount, and calcified plaque of CAD, as well as obstructive CAD.
- Glutamate was associated with non-calcified plaque, while phenylalanine was linked to the amount of CAD, calcified plaque, and obstructive CAD.
- Trimethylamine N-oxide was negatively associated with non-calcified plaque. Lipid and nucleotide metabolic pathways were independently associated with CAD presence.
Conclusions:
- Novel associations were established between specific plasma metabolites (DMGV, glutamate, phenylalanine, TMAO) and CAD plaque phenotypes.
- Two metabolic pathways (lipid and nucleotide) were identified as significantly associated with CAD, independent of traditional risk factors.
- These findings highlight potential new biomarkers and mechanistic targets for cardiovascular disease research and clinical application.
Abstract:
Despite effective prevention programs targeting cardiovascular risk factors, coronary artery disease (CAD) remains the leading cause of death. Novel biomarkers are needed for improved risk stratification and primary prevention. To assess for independent associations between plasma metabolites and specific CAD plaque phenotypes we performed liquid chromatography mass-spectrometry on plasma from 1002 patients in the BioHEART-CT study. Four metabolites were examined as candidate biomarkers. Dimethylguanidino valerate (DMGV) was associated with presence and amount of CAD (OR) 1.41 (95% Confidence Interval [CI] 1.12-1.79, p = 0.004), calcified plaque, and obstructive CAD (p < 0.05 for both). The association with amount of plaque remained after adjustment for traditional risk factors, ß-coefficient 0.17 (95% CI 0.02-0.32, p = 0.026). Glutamate was associated with the presence of non-calcified plaque, OR 1.48 (95% CI 1.09-2.01, p = 0.011). Phenylalanine was associated with amount of CAD, ß-coefficient 0.33 (95% CI 0.04-0.62, p = 0.025), amount of calcified plaque, (ß-coefficient 0.88, 95% CI 0.23-1.53, p = 0.008), and obstructive CAD, OR 1.84 (95% CI 1.01-3.31, p = 0.046). Trimethylamine N-oxide was negatively associated non-calcified plaque OR 0.72 (95% CI 0.53-0.97, p = 0.029) and the association remained when adjusted for traditional risk factors. In targeted metabolomic analyses including 53 known metabolites and controlling for a 5% false discovery rate, DMGV was strongly associated with the presence of calcified plaque, OR 1.59 (95% CI 1.26-2.01, p = 0.006), obstructive CAD, OR 2.33 (95% CI 1.59-3.43, p = 0.0009), and amount of CAD, ß-coefficient 0.3 (95% CI 0.14-0.45, p = 0.014). In multivariate analyses the lipid and nucleotide metabolic pathways were both associated with the presence of CAD, after adjustment for traditional risk factors. We report novel associations between CAD plaque phenotypes and four metabolites previously associated with CAD. We also identified two metabolic pathways strongly associated with CAD, independent of traditional risk factors. These pathways warrant further investigation at both a biomarker and mechanistic level.
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