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Author Spotlight: Optimizing CFU Determination for Efficient Assessment of TB Vaccine Efficacy and Antigen Presentation Analysis
Published on: July 28, 2023
Implementation of tuberculosis prevention for exposed children, Burkina Faso
Giorgia Sulis1, Adjima Combary2, Haileyesus Getahun3
1Department of Infectious and Tropical Diseases, University of Brescia, Piazzale Spedali Civili 1, 25123 Brescia, Italy.
Insights
Active tracing of child contacts significantly improved tuberculosis case finding and preventive therapy initiation compared to passive tracing. This highlights the effectiveness of active strategies in managing latent tuberculosis infection.
Area of Science:
- Public Health
- Infectious Disease Epidemiology
- Tuberculosis Control
Background:
- Latent tuberculosis infection (LTBI) management requires effective contact tracing systems.
- Burkina Faso sought to improve its LTBI recording and reporting for child contacts.
- Understanding the impact of different tracing strategies is crucial for public health interventions.
Purpose of the Study:
- To develop and validate a simplified system for LTBI diagnosis and treatment reporting.
- To compare the effectiveness of passive versus active tracing of child contacts for LTBI indicators.
Main Methods:
- Revision of Burkina Faso's LTBI register and quarterly tuberculosis reporting forms.
- Nationwide measurement of screening coverage and preventive therapy initiation for child contacts (under five years) from April 2016 to March 2017.
- Evaluation of LTBI indicators in the Hauts-Bassins region before and after implementing active contact tracing.
Main Results:
- Passive tracing identified 1166 child contacts, with 82.0% screened and 90.5% initiating preventive therapy.
- Active tracing in Hauts-Bassins resulted in a higher contact:index ratio (1.83) and screening coverage (99.3%).
- The revised recording system proved feasible and user-friendly for measuring LTBI indicators.
Conclusions:
- The new recording and reporting system effectively measures global LTBI indicators.
- Active tracing of child contacts yields significantly higher detection rates than passive tracing.
- Implementing active tracing strategies is essential for improving LTBI case finding in children.
Objective:
To develop and test a simple system for recording and reporting the diagnosis and treatment of latent tuberculosis infection and to compare the effects of passive and active tracing of child contacts on indicators of such infection.
Methods:
We revised Burkina Faso's latent tuberculosis infection register and quarterly tuberculosis reporting form. Subsequently, coverage of the routine screening of contacts, who were younger than five years, for active tuberculosis and the corresponding percentages of such contacts who, if eligible, initiated preventive therapy were measured, nationwide, between 1 April 2016 and 31 March 2017. In 2016, we evaluated indicators of latent tuberculosis infection in the Hauts-Bassins region before and after community health workers had begun the active tracing of contacts who were younger than five years.
Findings:
In Burkina Faso, during our study period, 3717 cases of pulmonary tuberculosis and 1166 corresponding contacts who were younger than five years were reported as the result of routine screening and passive contact tracing. The overall contact:index ratio was 0.31 and corresponding screening coverage was 82.0% (956/1166) and proportion of children starting on preventive treatment was 90.5% (852/941). Active tracing in Hauts-Bassins led to a substantially higher contact/index ratio (1.83) and screening coverage (99.3%; 145/146).
Conclusion:
The newly established recording and reporting system proved feasible and user-friendly and allowed measurement of global indicators of latent tuberculosis infection. Compared with active tracing, passive tracing led to much lower estimates of the numbers of child contacts.
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