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Impact assessment of self-medication on COVID-19 prevalence in Gauteng, South Africa, using an age-structured disease transmission modelling framework.
Avusuglo, Wisdom S; Han, Qing; Woldegerima, Woldegebriel Assefa; Bragazzi, Nicola; Asgary, Ali; Ahmadi, Ali; Orbinski, James; Wu, Jianhong; Mellado, Bruce; Kong, Jude Dzevela.
Affiliation
  • Avusuglo WS; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Han Q; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Woldegerima WA; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Bragazzi N; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Asgary A; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Ahmadi A; The Advanced Disaster, Emergency and Rapid Response Program, York University, Toronto, Canada.
  • Orbinski J; K. N.Toosi University of Technology, Faculty of Computer Engineering, Tehran, Iran.
  • Wu J; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), the Dahdaleh Institute for Global Health Research, York University, Toronto, Canada.
  • Mellado B; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), York University, Toronto, Canada.
  • Kong JD; Africa-Canada Artificial Intelligence and Data Innovation Consortium (ACADIC), University of the Witwatersrand, Johannesburg, South Africa.
BMC Public Health ; 24(1): 1540, 2024 Jun 07.
Article in En | MEDLINE | ID: mdl-38849785
ABSTRACT

OBJECTIVE:

To assess the impact of self-medication on the transmission dynamics of COVID-19 across different age groups, examine the interplay of vaccination and self-medication in disease spread, and identify the age group most prone to self-medication.

METHODS:

We developed an age-structured compartmentalized epidemiological model to track the early dynamics of COVID-19. Age-structured data from the Government of Gauteng, encompassing the reported cumulative number of cases and daily confirmed cases, were used to calibrate the model through a Markov Chain Monte Carlo (MCMC) framework. Subsequently, uncertainty and sensitivity analyses were conducted on the model parameters.

RESULTS:

We found that self-medication is predominant among the age group 15-64 (74.52%), followed by the age group 0-14 (34.02%), and then the age group 65+ (11.41%). The mean values of the basic reproduction number, the size of the first epidemic peak (the highest magnitude of the disease), and the time of the first epidemic peak (when the first highest magnitude occurs) are 4.16499, 241,715 cases, and 190.376 days, respectively. Moreover, we observed that self-medication among individuals aged 15-64 results in the highest spreading rate of COVID-19 at the onset of the outbreak and has the greatest impact on the first epidemic peak and its timing.

CONCLUSION:

Studies aiming to understand the dynamics of diseases in areas prone to self-medication should account for this practice. There is a need for a campaign against COVID-19-related self-medication, specifically targeting the active population (ages 15-64).
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Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Self Medication / COVID-19 Limits: Adolescent / Adult / Aged / Child / Child, preschool / Female / Humans / Infant / Male / Middle aged Country/Region as subject: Africa Language: En Journal: BMC Public Health Journal subject: SAUDE PUBLICA Year: 2024 Type: Article Affiliation country: Canada

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Self Medication / COVID-19 Limits: Adolescent / Adult / Aged / Child / Child, preschool / Female / Humans / Infant / Male / Middle aged Country/Region as subject: Africa Language: En Journal: BMC Public Health Journal subject: SAUDE PUBLICA Year: 2024 Type: Article Affiliation country: Canada