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Development of treatment-decision algorithms for children evaluated for pulmonary tuberculosis: an individual participant data meta-analysis

Authors :
Gunasekera, Kenneth S
Marcy, Olivier
Muñoz, Johanna
Lopez-Varela, Elisa
Sekadde, Moorine P
Franke, Molly F
Bonnet, Maryline
Ahmed, Shakil
Amanullah, Farhana
Anwar, Aliya
Augusto, Orvalho
Aurilio, Rafaela Baroni
Banu, Sayera
Batool, Iraj
Brands, Annemieke
Cain, Kevin P
Carratalá-Castro, Lucía
Caws, Maxine
Click, Eleanor S
Cranmer, Lisa M
García-Basteiro, Alberto L
Hesseling, Anneke C
Huynh, Julie
Kabir, Senjuti
Lecca, Leonid
Mandalakas, Anna
Mavhunga, Farai
Myint, Aye Aye
Myo, Kyaw
Nampijja, Dorah
Nicol, Mark P
Orikiriza, Patrick
Palmer, Megan
Sant'Anna, Clemax Couto
Siddiqui, Sara Ahmed
Smith, Jonathan P
Song, Rinn
Thuong Thuong, Nguyen Thuy
Ung, Vibol
van der Zalm, Marieke M
Verkuijl, Sabine
Viney, Kerri
Walters, Elisabetta G
Warren, Joshua L
Zar, Heather J
Marais, Ben J
Graham, Stephen M
Debray, Thomas P A
Cohen, Ted
Seddon, James A
Source :
The Lancet Child & Adolescent Health; 20230101, Issue: Preprints
Publication Year :
2023

Abstract

Many children with pulmonary tuberculosis remain undiagnosed and untreated with related high morbidity and mortality. Recent advances in childhood tuberculosis algorithm development have incorporated prediction modelling, but studies so far have been small and localised, with limited generalisability. We aimed to evaluate the performance of currently used diagnostic algorithms and to use prediction modelling to develop evidence-based algorithms to assist in tuberculosis treatment decision making for children presenting to primary health-care centres.

Details

Language :
English
ISSN :
23524642 and 23524650
Issue :
Preprints
Database :
Supplemental Index
Journal :
The Lancet Child & Adolescent Health
Publication Type :
Periodical
Accession number :
ejs62527739
Full Text :
https://doi.org/10.1016/S2352-4642(23)00004-4