COVID-19 control strategies and intervention effects in resource limited settings: A modeling study

PLoS One. 2021 Jun 2;16(6):e0252570. doi: 10.1371/journal.pone.0252570. eCollection 2021.

Abstract

Introduction: Many countries with weaker health systems are struggling to put together a coherent strategy against the COVID-19 epidemic. We explored COVID-19 control strategies that could offer the greatest benefit in resource limited settings.

Methods: Using an age-structured SEIR model, we explored the effects of COVID-19 control interventions-a lockdown, physical distancing measures, and active case finding (testing and isolation, contact tracing and quarantine)-implemented individually and in combination to control a hypothetical COVID-19 epidemic in Kathmandu (population 2.6 million), Nepal.

Results: A month-long lockdown will delay peak demand for hospital beds by 36 days, as compared to a base scenario of no intervention (peak demand at 108 days (IQR 97-119); a 2 month long lockdown will delay it by 74 days, without any difference in annual mortality, or healthcare demand volume. Year-long physical distancing measures will reduce peak demand to 36% (IQR 23%-46%) and annual morality to 67% (IQR 48%-77%) of base scenario. Following a month long lockdown with ongoing physical distancing measures and an active case finding intervention that detects 5% of the daily infection burden could reduce projected morality and peak demand by more than 99%.

Conclusion: Limited resource settings are best served by a combination of early and aggressive case finding with ongoing physical distancing measures to control the COVID-19 epidemic. A lockdown may be helpful until combination interventions can be put in place but is unlikely to reduce annual mortality or healthcare demand.

MeSH terms

  • COVID-19 / prevention & control*
  • Communicable Disease Control / methods*
  • Communicable Disease Control / trends
  • Contact Tracing / methods
  • Epidemics / prevention & control*
  • Epidemics / statistics & numerical data
  • Humans
  • Models, Theoretical
  • Physical Distancing
  • Quarantine / methods
  • SARS-CoV-2 / pathogenicity

Grants and funding

The authors received no specific funding for this work.