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Evaluation of Atherosclerotic Cardiovascular Risk Prediction Models in China: Results From the CHERRY Study
Xiaofei Liu1,2, Peng Shen3, Dudan Zhang4
1Department of Epidemiology and Biostatistics, Peking University Health Science Center, Beijing, China.
Insights
The Pooled Cohort Equations (PCE) and China-PAR models show good accuracy for predicting atherosclerotic cardiovascular disease (ASCVD) risk in Chinese adults. Recalibration improved PCE performance, but further models are needed for high-risk individuals.
Area of Science:
- Cardiology
- Public Health
- Epidemiology
Background:
- Current guidelines recommend atherosclerotic cardiovascular disease (ASCVD) risk assessment using Pooled Cohort Equations (PCE) or China-PAR models.
- Limited data exist on the performance of these ASCVD risk prediction models in Asian populations.
Purpose of the Study:
- To evaluate the accuracy of the PCE and China-PAR models for predicting ASCVD risk in a contemporary Chinese cohort.
- To compare the discrimination and calibration of both models in a large-scale Chinese population.
Main Methods:
- Utilized data from the CHERRY study (2010-2016) including 226,406 participants aged 40-79 without prior ASCVD.
- Assessed model performance using C-statistics for discrimination and calibration analysis.
- Defined ASCVD as nonfatal/fatal stroke, nonfatal myocardial infarction, or cardiovascular death.
Main Results:
- Both PCE and China-PAR demonstrated good discrimination for 5-year ASCVD risk prediction in men and women.
- China-PAR showed better calibration but underpredicted risk, particularly in women and high-risk groups.
- PCE exhibited poor calibration, overestimating risk in men and underestimating in women; recalibration improved its alignment with observed risks.
Conclusions:
- PCE and China-PAR models possess good discriminatory ability for ASCVD risk in the Chinese population.
- Recalibration of the PCE model enhanced its performance, achieving comparable results to China-PAR.
- Development of tailored models is necessary to improve ASCVD risk prediction accuracy, especially for individuals at the highest risk.
Background:
Updated American or Chinese guidelines recommended calculating atherosclerotic cardiovascular disease (ASCVD) risk using the Pooled Cohort Equations (PCE) or Prediction for Atherosclerotic Cardiovascular Disease Risk in China (China-PAR) models; however, evidence on performance of both models in Asian populations is limited.
Objectives:
The authors aimed to evaluate the accuracy of the PCE or China-PAR models in a Chinese contemporary cohort.
Methods:
Data were extracted from the CHERRY (CHinese Electronic health Records Research in Yinzhou) study. Participants aged 40 to 79 years without prior ASCVD at baseline from 2010 to 2016 were included. ASCVD was defined as nonfatal or fatal stroke, nonfatal myocardial infarction, and cardiovascular death. Models were assessed for discrimination and calibration.
Results:
Among 226,406 participants, 5362 (2.37%) adults developed a first ASCVD event during a median of 4.60 years of follow-up. Both models had good discrimination: C-statistics in men were 0.763 (95% confidence interval [CI]: 0.754-0.773) for PCE and 0.758 (95% CI: 0.749-0.767) for China-PAR; C-statistics in women were 0.820 (95% CI: 0.812-0.829) for PCE and 0.811 (95% CI: 0.802-0.819) for China-PAR. The China-PAR model underpredicted risk by 20% in men and by 40% in women, especially in the highest-risk groups. However, PCE overestimated by 63% in men and inversely underestimated the risk by 34% in women with poor calibration (both P < 0.001). After recalibration, observed and predicted risks by recalibrated PCE were better aligned.
Conclusions:
In this large-scale population-based study, both PCE and China-PAR had good discrimination in 5-year ASCVD risk prediction. China-PAR outperformed PCE in calibration, whereas recalibration equalized the performance of PCE and China-PAR. Further specific models are needed to improve accuracy in the highest-risk groups.
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