Developing a Charlson Comorbidity Index for the American Indian Population Using the Epidemiologic Data from the

Paul Rogers1, Christine Merenda2, Richardae Araojo2

  • 1National Center for Toxicological Research, Division of Bioinformatics and Biostatistics, U.S. Food and Drug Administration.

Research Square
|October 16, 2023
PubMed

Insights

This study adapted the Charlson Comorbidity Index (CCI) for American Indians, creating a modified CCI (mCCI-AI). The new index accurately predicts one-year mortality risk in this population, outperforming the original CCI.

Area of Science:

  • Epidemiology
  • Biostatistics
  • Public Health

Background:

  • The Charlson Comorbidity Index (CCI) is a standard mortality prediction tool, but its accuracy for American Indians is questionable due to potential underrepresentation in original cohorts.
  • American Indians face a disproportionately high burden of chronic health conditions, necessitating a tailored risk assessment tool.

Approach:

  • The study modified the CCI using data from The Strong Heart Study (SHS), a longitudinal study of cardiovascular disease in American Indians.
  • One-year survival analysis was conducted, assessing comorbidity impacts via hazard ratios, and a Kaplan-Meier plot was used for validation.

Key Points:

  • Weights for myocardial infarction, congestive heart failure, and hypertension were higher in the modified CCI for American Indians (mCCI-AI) compared to the original CCI.
  • Lung cancer received the highest weight (hazard ratio of 8.308), and liver illness weights were equivalent to severe disease in the original CCI.

Conclusions:

  • The mCCI-AI significantly predicted one-year mortality in American Indians (p = .0002).
  • The mCCI-AI demonstrated superior performance, accurately discriminating between survivors and non-survivors 73% of the time, outperforming the original CCI.
Abstract

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