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Published on: November 10, 2023
Predictive Model and Risk Factors for Case Fatality of COVID-19: A Cohort of 21,392 Cases in Hubei, China
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.
Abstract:
An increasing number of patients are being killed by coronavirus disease 2019 (COVID-19), however, risk factors for the fatality of COVID-19 remain unclear. A total of 21,392 COVID-19 cases were recruited in the Hubei Province of China between December 2019 and February 2020, and followed up until March 18, 2020. We adopted Cox regression models to investigate the risk factors for case fatality and predicted the death probability under specific combinations of key predictors. Among the 21,392 patients, 1,020 (4.77%) died of COVID-19. Multivariable analyses showed that factors, including age (≥60 versus <45 years, hazard ratio [HR] = 7.32; 95% confidence interval [CI], 5.42, 9.89), sex (male versus female, HR = 1.31; 95% CI, 1.15, 1.50), severity of the disease (critical versus mild, HR = 39.98; 95% CI, 29.52, 48.86), comorbidity (HR = 1.40; 95% CI, 1.23, 1.60), highest body temperature (>39°C versus <39°C, HR = 1.28; 95% CI, 1.09, 1.49), white blood cell counts (>10 × 109/L versus (4-10) × 109/L, HR = 1.69; 95% CI, 1.35, 2.13), and lymphocyte counts (<0.8 × 109/L versus (0.8-4) × 109/L, HR = 1.26; 95% CI, 1.06, 1.50) were significantly associated with case fatality of COVID-19 patients. Individuals of an older age, who were male, with comorbidities, and had a critical illness had the highest death probability, with 21%, 36%, 46%, and 54% within 1-4 weeks after the symptom onset. Risk factors, including demographic characteristics, clinical symptoms, and laboratory factors were confirmed to be important determinants of fatality of COVID-19. Our predictive model can provide scientific evidence for a more rational, evidence-driven allocation of scarce medical resources to reduce the fatality of COVID-19.
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