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  4. Sensitivity And Specificity Of Patient-Reported Clinical Manifestations To Diagnose Covid-19 In Adults From A National Database In Chile: A Cross-Sectional Study
 
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Sensitivity And Specificity Of Patient-Reported Clinical Manifestations To Diagnose Covid-19 In Adults From A National Database In Chile: A Cross-Sectional Study

Journal
Biology
Date Issued
2022-07-29
Author(s)
Felipe Martinez
Sergio Muñoz
Guerrero, Camilo  
Facultad de Medicina  
Carla Taramasco
DOI
10.3390/biology11081136
WoS ID
WOS:000847104200001
Abstract
(1) Background: The diagnosis of COVID-19 is frequently made on the basis of a suggestive clinical history and the detection of SARS-CoV-2 RNA in respiratory secretions. However, the diagnostic accuracy of clinical features is unknown. (2) Objective: To assess the diagnostic accuracy of patient-reported clinical manifestations to identify cases of COVID-19. (3) Methodology: Cross-sectional study using data from a national registry in Chile. Infection by SARS-CoV-2 was confirmed using RT-PCR in all cases. Anonymised information regarding demographic characteristics and clinical features were assessed using sensitivity, specificity, and diagnostic odds ratios. A multivariable logistic regression model was constructed to combine epidemiological risk factors and clinical features. (4) Results: A total of 2,187,962 observations were available for analyses. Male participants had a mean age of 43.1 ± 17.5 years. The most common complaints within the study were headache (39%), myalgia (32.7%), cough (31.6%), and sore throat (25.7%). The most sensitive features of disease were headache, myalgia, and cough, and the most specific were anosmia and dysgeusia/ageusia. A multivariable model showed a fair diagnostic accuracy, with a ROC AUC of 0.744 (95% CI 0.743–0.746). (5) Discussion: No single clinical feature was able to fully confirm or exclude an infection by SARS-CoV-2. The combination of several demographic and clinical factors had a fair diagnostic accuracy in identifying patients with the disease. This model can help clinicians tailor the probability of COVID-19 and select diagnostic tests appropriate to their setting.
Subjects

Agricultural And Biol...

Biology

Biochemistry, Genetic...

Immunology And Microb...

OCDE Subjects

Natural Sciences::Bio...

Quartile (Date Issued)
Q1
License
acceso abierto
Open Science Path
https://creativecommons.org/licenses/by/4.0/

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