Primary prevention cardiovascular disease risk prediction model for contemporary Chinese (1°P-CARDIAC): Model

Yekai Zhou1,2, Celia Jiaxi Lin3, Qiuyan Yu2,4

  • 1School of Computing and Data Science, The University of Hong Kong, Hong Kong Special Administration Region, China.

Plos One
|July 28, 2025
PubMed

Insights

A new cardiovascular disease (CVD) risk prediction model, 1°P-CARDIAC, was developed for primary prevention in Chinese populations. This model shows improved performance over existing tools, aiding early intervention for high-risk individuals.

Area of Science:

  • Cardiology
  • Public Health
  • Data Science

Background:

  • Cardiovascular disease (CVD) is a leading cause of death globally and in China.
  • A validated primary prevention model specifically for Chinese populations is lacking.
  • Early identification of high-risk individuals is crucial for CVD prevention.

Purpose of the Study:

  • To create and validate a primary prevention risk prediction model for Chinese individuals.
  • To identify high-risk individuals for early CVD intervention.
  • To compare the novel model's performance against existing risk prediction tools.

Main Methods:

  • Developed and validated the Personalized CARdiovascular DIsease risk Assessment for Chinese (1°P-CARDIAC) model using derivation and validation cohorts in Hong Kong.
  • Employed XGBoost Cox model and multivariate imputation with chained equation (MICE) for model derivation and handling missing data.
  • Compared 1°P-CARDIAC against PREDICT, pooled cohort equation (PCE), China-PAR, and Framingham (Asian) models using bootstrap validation.

Main Results:

  • The study included nearly 1.3 million patients across derivation and validation cohorts.
  • The 1°P-CARDIAC full model demonstrated strong performance (C-statistic: 0.87) and calibration (slope: 0.94).
  • The basic 1°P-CARDIAC model also showed good performance (C-statistic: 0.75, slope: 0.91), outperforming existing models (C-statistic: 0.68–0.72).

Conclusions:

  • 1°P-CARDIAC is a validated CVD risk prediction model for primary prevention in Chinese populations, utilizing a hybrid machine-learning approach.
  • The model demonstrated superior performance compared to commonly used risk models.
  • 1°P-CARDIAC offers effectiveness and versatility, with potential for improving public health outcomes in CVD primary prevention.
Abstract

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