Optimal symptom combinations to aid COVID-19 case identification: Analysis from a community-based, prospective, observational cohort.

COVID-19 Community-based cohort Optimal symptom combinations SARS-CoV-2 Vaccine trials

Journal

The Journal of infection
ISSN: 1532-2742
Titre abrégé: J Infect
Pays: England
ID NLM: 7908424

Informations de publication

Date de publication:
03 2021
Historique:
received: 17 12 2020
revised: 08 02 2021
accepted: 10 02 2021
pubmed: 17 2 2021
medline: 25 3 2021
entrez: 16 2 2021
Statut: ppublish

Résumé

Diagnostic work-up following any COVID-19 associated symptom will lead to extensive testing, potentially overwhelming laboratory capacity whilst primarily yielding negative results. We aimed to identify optimal symptom combinations to capture most cases using fewer tests with implications for COVID-19 vaccine developers across different resource settings and public health. UK and US users of the COVID-19 Symptom Study app who reported new-onset symptoms and an RT-PCR test within seven days of symptom onset were included. Sensitivity, specificity, and number of RT-PCR tests needed to identify one case (test per case [TPC]) were calculated for different symptom combinations. A multi-objective evolutionary algorithm was applied to generate combinations with optimal trade-offs between sensitivity and specificity. UK and US cohorts included 122,305 (1,202 positives) and 3,162 (79 positive) individuals. Within three days of symptom onset, the COVID-19 specific symptom combination (cough, dyspnoea, fever, anosmia/ageusia) identified 69% of cases requiring 47 TPC. The combination with highest sensitivity (fatigue, anosmia/ageusia, cough, diarrhoea, headache, sore throat) identified 96% cases requiring 96 TPC. We confirmed the significance of COVID-19 specific symptoms for triggering RT-PCR and identified additional symptom combinations with optimal trade-offs between sensitivity and specificity that maximize case capture given different resource settings.

Identifiants

pubmed: 33592254
pii: S0163-4453(21)00079-7
doi: 10.1016/j.jinf.2021.02.015
pmc: PMC7881291
pii:
doi:

Substances chimiques

COVID-19 Vaccines 0

Types de publication

Journal Article Observational Study Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

384-390

Subventions

Organisme : Wellcome Trust
Pays : United Kingdom
Organisme : NIDDK NIH HHS
ID : K01 DK120742
Pays : United States

Commentaires et corrections

Type : UpdateOf

Informations de copyright

Copyright © 2021. Published by Elsevier Ltd.

Déclaration de conflit d'intérêts

Declaration of Competing Interest Potential conflicts of interest. JW, RD, JCP, and AM are employees of Zoe Global Ltd. ATC reports grants from Massachusetts Consortium on Pathogen Readiness during the conduct of the study, personal fees from Pfizer Inc., and grants and personal fees from Bayer Pharma; CEPI (authors AC, JG, JPC, AEL) funds clinical trials of COVID-19 vaccines. All other authors declare no competing interests.

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Auteurs

M Antonelli (M)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

J Capdevila (J)

Zoe Global, London, United Kingdom.

A Chaudhari (A)

Coalition for Epidemic Preparedness Innovations, London, United Kingdom.

J Granerod (J)

Coalition for Epidemic Preparedness Innovations, London, United Kingdom.

L S Canas (LS)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

M S Graham (MS)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

K Klaser (K)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

M Modat (M)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

E Molteni (E)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

B Murray (B)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

C H Sudre (CH)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom; MRC Unit for Lifelong Health and Ageing at UCL/Centre for Medical Image Computing, Department of Computer Science, UCL, London, United Kingdom.

R Davies (R)

Zoe Global, London, United Kingdom.

A May (A)

Zoe Global, London, United Kingdom.

L H Nguyen (LH)

Clinical and Translational Epidemiology Unit, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States; Division of Gastroenterology, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States.

D A Drew (DA)

Clinical and Translational Epidemiology Unit, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States; Division of Gastroenterology, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States.

A Joshi (A)

Clinical and Translational Epidemiology Unit, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States; Division of Gastroenterology, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States.

A T Chan (AT)

Clinical and Translational Epidemiology Unit, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States; Division of Gastroenterology, Massachusetts General Hospital and Harvard Medical School, Boston, MA, United States.

J P Cramer (JP)

Coalition for Epidemic Preparedness Innovations, London, United Kingdom.

T Spector (T)

Department of Twin Research and Genetic Epidemiology, King's College London, London, United Kingdom.

J Wolf (J)

Zoe Global, London, United Kingdom.

S Ourselin (S)

School of Biomedical Engineering & Imaging Sciences, King's College London, London, United Kingdom.

C J Steves (CJ)

Department of Twin Research and Genetic Epidemiology, King's College London, London, United Kingdom. Electronic address: Claire.j.steves@kcl.ac.uk.

A E Loeliger (AE)

Coalition for Epidemic Preparedness Innovations, London, United Kingdom.

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Classifications MeSH