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Coronary Progenitor Cells and Soluble Biomarkers in Cardiovascular Prognosis after Coronary Angioplasty
Published on: January 28, 2020
Do novel biomarkers add to existing scores of total cardiovascular risk?
Guy De Backer1, Ian Graham, Marie-Therese Cooney
1Department of Public Health, University Hospital, DePintelaan 185, Ghent, Belgium. guy.debacker@ugent.be
Insights
Estimating cardiovascular risk is approximate. Novel biomarkers may improve risk prediction, especially for intermediate-risk individuals, by refining cardiovascular event risk assessment.
Area of Science:
- Cardiology
- Preventive Medicine
- Biomarker Research
Background:
- Cardiovascular disease (CVD) risk stratification is crucial for preventive strategies.
- Current risk models (e.g., Framingham, SCORE) use traditional factors like age, blood pressure, and cholesterol.
- Accurate cardiovascular risk assessment in asymptomatic individuals remains a challenge.
Purpose of the Study:
- To evaluate the incremental value of novel biomarkers in improving cardiovascular risk prediction.
- To assess the utility of new markers in reclassifying individuals, particularly those at intermediate risk.
- To determine if novel biomarkers enhance the accuracy of existing cardiovascular risk models.
Main Methods:
- Review of existing cardiovascular risk models and their limitations.
- Discussion of novel cardiovascular risk markers (lipid, inflammatory, thrombotic, genetic).
- Explanation of risk reclassification metrics like the Net Reclassification Improvement (NRI) index.
Main Results:
- Traditional risk factors explain the majority of cardiovascular risk.
- Novel biomarkers have shown limited incremental value when added to existing models.
- New markers show potential for reclassifying individuals at intermediate risk to appropriate intervention thresholds.
Conclusions:
- Novel biomarkers offer modest improvements in cardiovascular risk prediction over traditional factors.
- The primary benefit of novel biomarkers may lie in refining risk assessment for intermediate-risk populations.
- Further research and validation are needed to integrate new biomarkers effectively into clinical practice.
Abstract:
While cardiovascular disease and certain other conditions are considered to confer a high or very high risk of cardiovascular events, the asymptomatic population can be subdivided in different categories of total CV risk using risk models; this allows the clinician to adapt the intensity of preventive strategies accordingly. Risk models, such as that based on the US Framingham Study and the SCORE model, based on European cohorts, estimate risk according to the presence of risk factors, including age, gender, smoking habits, systolic blood pressure, and cholesterol levels. However, estimation of an individual's cardiovascular risk remains approximate, and whether new biomarkers of risk will improve risk assessment is a key question. Several novel cardiovascular risk markers have been suggested, including lipid, inflammatory, thrombotic, and genetic biomarkers. Demonstrating that a novel biomarker is predictive of cardiovascular disease is, by itself, insufficient proof that it adds incremental value to existing risk estimation models. The Net Reclassification Improvement index provides an indication of the ability of a novel marker to improve risk estimation by classifying individuals to a more correct category. In addition, new risk models may be calibrated by measuring how closely predicted outcomes agree with actual outcomes. Traditional cardiovascular risk factors explain most of an individual's risk. Consequently, the addition of new risk factors to existing models has provided disappointingly small effects overall. However, there addition to conventional risk estimation may be useful in correctly reclassifying individuals at intermediate risk as above or below a chosen intervention threshold.
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