Systematic examination of a heart failure risk prediction tool: The pooled cohort equations to prevent heart failure

Aakash Bavishi1, Donald M Lloyd-Jones2,3, Hongyan Ning2

  • 1Department of Medicine, Northwestern University Feinberg School of Medicine, Chicago, Illinois, United States of America.

Plos One
|November 3, 2020
PubMed

Insights

Identifying individuals at risk for heart failure is crucial. The Pooled Cohort Equations to Prevent Heart Failure model shows wide risk variations across diverse populations, emphasizing the need for race- and sex-specific predictions.

Area of Science:

  • Cardiology
  • Preventive Medicine
  • Health Disparities

Background:

  • Accurate identification of individuals at risk for heart failure is essential for effective preventive strategies.
  • The Pooled Cohort Equations to Prevent Heart Failure is a recently developed risk prediction model.

Purpose of the Study:

  • To evaluate the clinical utility of the Pooled Cohort Equations to Prevent Heart Failure model.
  • To demonstrate the range of 10-year heart failure risk predictions across diverse combinations of risk factors in White and Black men and women.

Main Methods:

  • Varied individual risk factors while keeping others constant at age-adjusted national mean values for each race-sex and age group.
  • Examined multiple risk factor combinations using the Pooled Cohort Equations to Prevent Heart Failure risk tool.

Main Results:

  • Predicted 10-year heart failure risk varied significantly across race-sex groups and age ranges.
  • Higher risk factor burden, such as diabetes and treated hypertension, consistently resulted in higher risk estimates.
  • Example: In a 40-year-old, predicted risk ranged from 0.1% to 9.7% (White man) and 0.2% to 28.0% (Black woman).

Conclusions:

  • The study underscores the wide variability in heart failure risk predictions based on risk factor profiles.
  • Highlights the critical need for race- and sex-specific multivariable risk prediction models for heart failure.
  • Emphasizes the importance of personalized risk assessment for clinical discussions and future prevention trials.

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