Developing a Long COVID Phenotype for Postacute COVID-19 in a National Primary Care Sentinel Cohort: Observational

Nikhil Mayor1, Bernardo Meza-Torres2,3, Cecilia Okusi4

  • 1Royal Surrey NHS Foundation Trust, Guildford, United Kingdom.

Insights

A new long COVID (LC) phenotype identifies individuals with the condition in routine data. This tool aids research into LC's epidemiology and clinical characteristics, improving understanding of post-COVID-19 health problems.

Area of Science:

  • Medical Informatics
  • Epidemiology
  • Clinical Research

Background:

  • Post-acute COVID-19, or long COVID (LC), affects up to 40% of individuals, presenting as a complex multisystem disease.
  • LC is underrecorded in primary care, necessitating better methods for clinical characterization and management.
  • Phenotypes offer a standardized, machine-processable approach for case definition and identification in routine data, crucial for LC research.

Purpose of the Study:

  • To develop a computable phenotype for long COVID (LC) to facilitate epidemiological studies and future research.
  • To compare clinical symptoms and characteristics of individuals with LC before and after COVID-19 infection.
  • To differentiate between hospitalized and non-hospitalized LC cases and compare them with acute COVID-19 patients.

Main Methods:

  • Utilized data from the nationally representative Primary Care Sentinel Cohort (PCSC) database.
  • Developed an LC phenotype using a 3-step ontological method: ontological, coding, and logical extract model.
  • Employed descriptive statistics and logistic regression to compare sociodemographic details, comorbidities, and LC symptoms between patient groups.

Main Results:

  • The developed LC phenotype successfully differentiated hospitalized LC patients from non-hospitalized individuals.
  • Analysis included 428,479 acute COVID-19 cases and 7,471 individuals coded with LC from the PCSC database.
  • 13.5% of LC patients were hospitalized compared to 4.5% of uncomplicated COVID-19 cases (P<.001).

Conclusions:

  • The established LC phenotype enables identification of individuals within routine datasets for retrospective research.
  • This phenotype and its validation protocol enhance the understanding of long COVID's epidemiology and clinical presentation.
  • Facilitates comparison of individuals with LC against unaffected populations, advancing LC research.
Abstract

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