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Coronary Progenitor Cells and Soluble Biomarkers in Cardiovascular Prognosis after Coronary Angioplasty
Published on: January 28, 2020
Aggregate Clinical and Biomarker-Based Model Predicts Adverse Outcomes in Patients With Coronary Artery Disease
Shivang R Desai1, Devinder S Dhindsa1, Yi-An Ko1
1Division of Cardiology, Department of Medicine, Emory Clinical Cardiovascular Research Institute, Emory University School of Medicine, Atlanta, Georgia.
Insights
A new risk score using six biomarkers significantly improves cardiovascular event prediction in coronary artery disease (CAD) patients. This multi-biomarker approach offers a more personalized risk assessment beyond traditional clinical factors.
Area of Science:
- Cardiology
- Biomarker Discovery
- Risk Stratification
Background:
- Coronary artery disease (CAD) patients exhibit variable cardiovascular event risk despite guideline-based therapy.
- Individualized risk assessment is crucial for optimizing patient management and outcomes.
Purpose of the Study:
- To evaluate the prognostic value of six key biomarkers in stable CAD.
- To develop and validate a multi-biomarker prediction model for cardiovascular events.
Main Methods:
- A cohort of 3,115 stable CAD patients was randomized into training and validation sets.
- Six biomarkers (hs-CRP, HSP-70, FDP, uPAR, hs-Troponin I, BNP) were analyzed.
- A biomarker risk score was developed and a prediction model was created.
Main Results:
- Elevated levels of individual biomarkers correlated with higher event rates.
- Each unit increase in the biomarker risk score independently predicted all-cause death and cardiovascular death/MI.
- The multi-biomarker model significantly improved risk prediction compared to clinical factors alone.
Conclusions:
- Integrating multiple biomarkers with clinical variables enhances cardiovascular risk assessment in CAD.
- This multi-biomarker approach provides a more precise and individualized risk stratification for patients with stable CAD.
Abstract:
Despite guideline-based therapy, patients with coronary artery disease (CAD) are at widely variable risk for cardiovascular events. This variability demands a more individualized risk assessment. Herein, we evaluate the prognostic value of 6 biomarkers: high-sensitivity C-reactive protein, heat shock protein-70, fibrin degradation products, soluble urokinase plasminogen activator receptor, high-sensitivity troponin I, and B-type natriuretic peptide. We then develop a multi-biomarker-based cardiovascular event prediction model for patients with stable CAD. In total, 3,115 subjects with stable CAD who underwent cardiac catheterization at Emory (mean age 62.8 years, 17% Black, 35% female, 57% obstructive CAD, 31% diabetes mellitus) were randomized into a training cohort to identify biomarker cutoff values and a validation cohort for prediction assessment. Main outcomes included (1) all-cause death and (2) a composite of cardiovascular death and nonfatal myocardial infarction (MI) within 5 years. Elevation of each biomarker level was associated with higher event rates in the training cohort. A biomarker risk score was created using optimal cutoffs, ranging from 0 to 6 for each biomarker exceeding its cutoff. In the validation cohort, each unit increase in the biomarker risk score was independently associated with all-cause death (hazard ratio 1.62, 95% confidence interval [CI] 1.45 to 1.80) and cardiovascular death/MI (hazard ratio 1.52, 95% CI 1.35 to 1.71). A biomarker risk prediction model for cardiovascular death/MI improved the c-statistic (∆ 6.4%, 95% CI 3.9 to 8.8) and net reclassification index by 31.1% (95% CI 24 to 37), compared with clinical risk factors alone. Integrating multiple biomarkers with clinical variables refines cardiovascular risk assessment in patients with CAD.
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