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Physiologic Scoring Systems in Predicting the COVID-19 Patients' one-month Mortality; a Prognostic Accuracy Study
Farhad Heydari1, Majid Zamani1, Babak Masoumi1
1Department of Emergency Medicine, Faculty of Medicine, Isfahan University of Medical Sciences, Isfahan, Iran.
Insights
Physiologic scoring systems effectively predict COVID-19 mortality. National Early Warning Score-2 (NEWS2) and Pandemic Respiratory Infection Emergency System Triage (PRIEST) showed superior accuracy compared to Quick Sequential Failure Assessment (qSOFA) in identifying high-risk patients.
Area of Science:
- Critical Care Medicine
- Infectious Diseases
- Public Health
Background:
- Accurate identification of severe coronavirus disease 2019 (COVID-19) patients and mortality prediction are crucial.
- Physiologic scoring systems offer potential tools for rapid risk assessment in emergency departments.
Purpose of the Study:
- To evaluate the accuracy of four common physiologic scoring systems in predicting COVID-19 patient mortality.
- To compare the predictive performance of the Quick Sequential Failure Assessment (qSOFA), Coronavirus Clinical Characterization Consortium (4C) Mortality, National Early Warning Score-2 (NEWS2), and Pandemic Respiratory Infection Emergency System Triage (PRIEST) scores.
Main Methods:
- A prospective, cross-sectional study involving 921 COVID-19 patients admitted to the emergency department.
- Clinical data were collected by emergency physicians.
- The predictive accuracy for mortality was assessed using the area under the receiver operating characteristic curve (AUROC) for each scoring system.
Main Results:
- The study included 921 patients, with an 80.9% survival rate at 30 days.
- Non-survivors were significantly older and had more comorbidities.
- The AUROCs for mortality prediction were: PRIEST (0.846), NEWS2 (0.843), 4C Mortality (0.804), and qSOFA (0.788).
- NEWS2 and PRIEST scores demonstrated significantly better prediction accuracy than qSOFA.
Conclusions:
- All evaluated physiologic scoring systems (PRIEST, NEWS2, 4C Mortality, qSOFA) are effective predictors of COVID-19 mortality.
- These scores can serve as valuable screening tools for identifying high-risk COVID-19 patients in emergency settings.
- NEWS2 and PRIEST are recommended for superior mortality prediction in COVID-19 patients.
Abstract:
Introduction : It is critical to quickly and easily identify severe coronavirus disease 2019 (COVID-19) patients and predict their mortality. This study aimed to determine the accuracy of the physiologic scoring systems in predicting the mortality of COVID-19 patients. Methods: This prospective cross-sectional study was performed on COVID-19 patients admitted to the emergency department (ED). The clinical characteristics of the participants were collected by the emergency physicians and the accuracy of the Quick Sequential Failure Assessment (qSOFA), Coronavirus Clinical Characterization Consortium (4C) Mortality, National Early Warning Score-2 (NEWS2), and Pandemic Respiratory Infection Emergency System Triage (PRIEST) scores for mortality prediction was evaluated. Results: Nine hundred and twenty-one subjects were included. Of whom, 745 (80.9%) patients survived after 30 days of admission. The mean age of patients was 59.13 ± 17.52 years, and 550 (61.6%) subjects were male. Non-Survived patients were significantly older (66.02 ± 17.80 vs. 57.45 ± 17.07, P< 0.001) and had more comorbidities (diabetes mellitus, respiratory, cardiovascular, and cerebrovascular disease) in comparison with survived patients. For COVID-19 mortality prediction, the AUROCs of PRIEST, qSOFA, NEWS2, and 4C Mortality score were 0.846 (95% CI [0.821-0.868]), 0.788 (95% CI [0.760-0.814]), 0.843 (95% CI [0.818-0.866]), and 0.804 (95% CI [0.776-0.829]), respectively. All scores were good predictors of COVID-19 mortality. Conclusion: All studied physiologic scores were good predictors of COVID-19 mortality and could be a useful screening tool for identifying high-risk patients. The NEWS2 and PRIEST scores predicted mortality in COVID-19 patients significantly better than qSOFA.
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