Predictive Model and Risk Factors for Case Fatality of COVID-19: A Cohort of 21,392 Cases in Hubei, China

Ran Wu1, Siqi Ai2, Jing Cai1

  • 1Institute of Preventive Medicine Information, Hubei Provincial Center for Disease Control and Prevention, 6 Zhuodaoquan North Road, Wuhan, Hubei 430079, China.

Insights

Older age, male sex, critical illness, and comorbidities significantly increase COVID-19 fatality risk. Understanding these factors aids in allocating medical resources to reduce coronavirus disease 2019 deaths.

Area of Science:

  • Epidemiology
  • Infectious Diseases
  • Public Health

Background:

  • Coronavirus disease 2019 (COVID-19) has caused significant mortality globally.
  • Risk factors contributing to COVID-19 case fatality remain incompletely understood.
  • Identifying these factors is crucial for effective disease management and resource allocation.

Purpose of the Study:

  • To investigate the key risk factors associated with COVID-19 case fatality.
  • To predict the probability of death based on identified risk factors.
  • To provide evidence for optimizing medical resource allocation in COVID-19 patient care.

Main Methods:

  • A cohort study involving 21,392 COVID-19 cases in Hubei Province, China (December 2019 - March 2020).
  • Utilized Cox regression models to analyze risk factors for case fatality.
  • Developed a predictive model for death probability based on significant predictors.

Main Results:

  • The overall case fatality rate was 4.77% (1,020 deaths).
  • Significant risk factors for fatality included older age (≥60 years), male sex, critical disease severity, comorbidities, high fever, elevated white blood cell count, and low lymphocyte count.
  • Older age, male sex, critical illness, and comorbidities were associated with the highest probabilities of death within 1-4 weeks.

Conclusions:

  • Demographic characteristics, clinical symptoms, and laboratory findings are critical determinants of COVID-19 fatality.
  • The predictive model offers a scientific basis for rational allocation of medical resources.
  • Reducing COVID-19 fatality necessitates targeted interventions for high-risk patient groups.

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