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Optimization of Population-Level Testing, Contact Tracing, and Isolation in Emerging COVID-19 Outbreaks: a Mathematical Modeling Study - Tonghua City and Beijing Municipality, China, 2021-2022.
Wang, Zengmiao; Wang, Ruixue; Wu, Peiyi; Li, Bingying; Li, Yidan; Liu, Yonghong; Wang, Xiaoli; Yang, Peng; Tian, Huaiyu.
  • Wang Z; State Key Laboratory of Remote Sensing Science, Center for Global Change and Public Health, College of Global Change and Earth System Science, Beijing Normal University, Beijing, China.
  • Wang R; School of National Safety and Emergency Management, Beijing Normal University, Beijing, China.
  • Wu P; State Key Laboratory of Remote Sensing Science, Center for Global Change and Public Health, College of Global Change and Earth System Science, Beijing Normal University, Beijing, China.
  • Li B; State Key Laboratory of Remote Sensing Science, Center for Global Change and Public Health, College of Global Change and Earth System Science, Beijing Normal University, Beijing, China.
  • Li Y; State Key Laboratory of Remote Sensing Science, Center for Global Change and Public Health, College of Global Change and Earth System Science, Beijing Normal University, Beijing, China.
  • Liu Y; Beijing Center for Disease Prevention and Control, Beijing, China.
  • Wang X; Beijing Center for Disease Prevention and Control, Beijing, China.
  • Yang P; Beijing Center for Disease Prevention and Control, Beijing, China.
  • Tian H; State Key Laboratory of Remote Sensing Science, Center for Global Change and Public Health, College of Global Change and Earth System Science, Beijing Normal University, Beijing, China.
China CDC Wkly ; 5(4): 82-89, 2023 Jan 27.
Article in English | MEDLINE | ID: covidwho-2246252
ABSTRACT

Introduction:

The transmissibility of the severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) Omicron variant poses challenges for the existing measures containing the virus in China. In response, this study investigates the effectiveness of population-level testing (PLT) and contact tracing (CT) to help curb coronavirus disease 2019 (COVID-19) resurgences in China.

Methods:

Two transmission dynamic models (i.e. with and without age structure) were developed to evaluate the effectiveness of PLT and CT. Extensive simulations were conducted to optimize PLT and CT strategies for COVID-19 control and surveillance.

Results:

Urban Omicron resurgences can be controlled by multiple rounds of PLT, supplemented by CT - as long as testing is frequent. This study also evaluated the time needed to detect COVID-19 cases for surveillance under different routine testing rates. The results show that there is a 90% probability of detecting COVID-19 cases within 3 days through daily testing. Otherwise, it takes around 7 days to detect COVID-19 cases at a 90% probability level if biweekly testing is used. Routine testing applied to the age group 21-60 for COVID-19 surveillance would achieve similar performance to that applied to all populations.

Discussion:

Our analysis evaluates potential PLT and CT strategies for COVID-19 control and surveillance.
Keywords

Full text: Available Collection: International databases Database: MEDLINE Type of study: Experimental Studies / Observational study Topics: Variants Language: English Journal: China CDC Wkly Year: 2023 Document Type: Article Affiliation country: Ccdcw2023.016

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Full text: Available Collection: International databases Database: MEDLINE Type of study: Experimental Studies / Observational study Topics: Variants Language: English Journal: China CDC Wkly Year: 2023 Document Type: Article Affiliation country: Ccdcw2023.016