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Updated: Jul 25, 2025

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Published on: April 9, 2012
Two Clinical Prediction Tools to Inform Rapid Tuberculosis Treatment Decision-making in Children
Meredith B Brooks1,2, Hamidah Hussain3, Sara Siddiqui2,4
1Department of Global Health, Boston University School of Public Health, Boston, Massachusetts, USA.
Insights
Two new clinical prediction tools accurately identify children needing rapid tuberculosis (TB) treatment when bacteriologic confirmation is unavailable. These tools utilize clinical evidence to guide timely diagnosis and management of pediatric TB cases.
Area of Science:
- Pediatric infectious diseases
- Clinical diagnostics
- Epidemiology
Background:
- Diagnosing tuberculosis (TB) in children often lacks bacteriologic confirmation.
- Clinical evidence is used to initiate treatment, but sufficiency criteria are unclear.
- Need for tools to identify children benefiting from rapid TB treatment.
Purpose of the Study:
- Develop and validate clinical prediction tools for initiating TB treatment in children.
- Identify key clinical predictors for TB diagnosis in pediatric populations.
Main Methods:
- Secondary analysis of a prospective TB patient-finding intervention in Pakistan (2014-2016).
- Development of two tools: Classification and Regression Trees (CART) decision trees and a multivariable logistic regression risk score.
- Analysis included bacteriologically confirmed and clinically diagnosed TB cases.
Main Results:
- CART analysis highlighted abnormal chest radiographs and family history of TB as key predictors (AUC, 0.949).
- The prediction score model incorporated age, low weight, cough, fever, weight loss, suggestive chest radiograph, and family history (AUC, 0.985 at cutoff 9).
- A significant proportion of children were eligible for TB treatment based on clinical criteria.
Conclusions:
- Clinical evidence is sufficient for accurate identification of children requiring TB treatment.
- Developed tools show strong performance compared to existing algorithms.
- External validation is recommended before operationalizing these diagnostic tools.
Background:
In the absence of bacteriologic confirmation to diagnose tuberculosis (TB) in children, it is suggested that treatment should be initiated when sufficient clinical evidence of disease is available. However, it is unclear what clinical evidence is sufficient to make this decision. To identify children who would benefit from rapid initiation of TB treatment, we developed 2 clinical prediction tools.
Methods:
We conducted a secondary analysis of a prospective intensified TB patient-finding intervention conducted in Pakistan in 2014-2016. TB disease was determined through either bacteriologic confirmation or a clinical diagnosis. We derived 2 tools: 1 uses classification and regression tree (CART) analysis to develop decision trees, while the second uses multivariable logistic regression to calculate a risk score.
Results:
Of the 5162 and 5074 children included in the CART and prediction score, respectively, 1417 (27.5%) and 1365 (26.9%) were eligible for TB treatment. CART identified abnormal chest radiographs and family history of TB as the most important predictors (area under the receiver operating characteristic curve [AUC], 0.949). The final prediction score model included age group (0-4, 5-9, 10-14), weight <5th percentile, cough, fever, weight loss, chest radiograph suggestive of TB disease, and family history of TB; the identified best cutoff score was 9 (AUC, 0.985%).
Conclusions:
Use of clinical evidence was sufficient to accurately identify children who would benefit from treatment initiation. Our tools performed well compared with existing algorithms, though these results need to be externally validated before operationalization.
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