Cardiovascular Risk Prediction in Men and Women Aged Under 50Years Using Routine Care Data

Hendrikus J A van Os1,2,3, Jos P Kanning4, Tobias N Bonten2,3

  • 1Department of Neurology Leiden University Medical Center Leiden The Netherlands.

Insights

New cardiovascular risk models were developed for adults aged 30-49. Data-driven approaches identified nontraditional predictors, modestly improving risk prediction for first-ever cardiovascular events in men and women.

Area of Science:

  • Cardiology
  • Epidemiology
  • Health Informatics

Background:

  • Cardiovascular event prediction models often exclude young adults.
  • Risk factors for cardiovascular disease can differ between sexes.
  • Younger populations require tailored cardiovascular risk assessment.

Purpose of the Study:

  • To develop sex-specific prediction models for first-ever cardiovascular events in adults aged 30-49 years.
  • To evaluate the performance of models using traditional versus data-driven predictor selection.
  • To identify novel predictors of cardiovascular events in younger adults.

Main Methods:

  • Utilized a Dutch routine care database including over 542,000 patients aged 30-49 without prior cardiovascular disease.
  • Developed sex-specific Cox proportional hazards models, comparing traditional predictors with models using the top 20 or 50 predictors identified via Cox elastic net regularization.
  • Assessed model performance using the C-index and calibration curves at 10-year follow-up, stratified by age groups (30-39 and 40-49).

Main Results:

  • Reference models showed moderate discrimination (women C-index: 0.648, men C-index: 0.661).
  • Models incorporating the 50 most important predictors demonstrated improved discrimination (C-index increase of 0.030 in women, 0.012 in men).
  • Net reclassification improved by 3.7% in women and 1.2% in men compared to reference models.

Conclusions:

  • Sex-specific prediction models for first-ever cardiovascular events in adults under 50 have moderate discriminatory performance.
  • Data-driven predictor selection, including nontraditional factors, modestly enhances the performance of cardiovascular risk prediction models.
  • Electronic health record data can facilitate the development of improved risk prediction tools for younger populations.

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