Incidental radiological findings during clinical tuberculosis screening in Lesotho and South Africa: a case series.


Journal

Journal of medical case reports
ISSN: 1752-1947
Titre abrégé: J Med Case Rep
Pays: England
ID NLM: 101293382

Informations de publication

Date de publication:
25 Aug 2023
Historique:
received: 02 05 2023
accepted: 21 07 2023
medline: 28 8 2023
pubmed: 25 8 2023
entrez: 24 8 2023
Statut: epublish

Résumé

Chest X-ray offers high sensitivity and acceptable specificity as a tuberculosis screening tool, but in areas with a high burden of tuberculosis, there is often a lack of radiological expertise to interpret chest X-ray. Computer-aided detection systems based on artificial intelligence are therefore increasingly used to screen for tuberculosis-related abnormalities on digital chest radiographies. The CAD4TB software has previously been shown to demonstrate high sensitivity for chest X-ray tuberculosis-related abnormalities, but it is not yet calibrated for the detection of non-tuberculosis abnormalities. When screening for tuberculosis, users of computer-aided detection need to be aware that other chest pathologies are likely to be as prevalent as, or more prevalent than, active tuberculosis. However, non--tuberculosis chest X-ray abnormalities detected during chest X-ray screening for tuberculosis remain poorly characterized in the sub-Saharan African setting, with only minimal literature. In this case series, we report on four cases with non-tuberculosis abnormalities detected on CXR in TB TRIAGE + ACCURACY (ClinicalTrials.gov Identifier: NCT04666311), a study in adult presumptive tuberculosis cases at health facilities in Lesotho and South Africa to determine the diagnostic accuracy of two potential tuberculosis triage tests: computer-aided detection (CAD4TB v7, Delft, the Netherlands) and C-reactive protein (Alere Afinion, USA). The four Black African participants presented with the following chest X-ray abnormalities: a 59-year-old woman with pulmonary arteriovenous malformation, a 28-year-old man with pneumothorax, a 20-year-old man with massive bronchiectasis, and a 47-year-old woman with aspergilloma. Solely using chest X-ray computer-aided detection systems based on artificial intelligence as a tuberculosis screening strategy in sub-Saharan Africa comes with benefits, but also risks. Due to the limitation of CAD4TB for non-tuberculosis-abnormality identification, the computer-aided detection software may miss significant chest X-ray abnormalities that require treatment, as exemplified in our four cases. Increased data collection, characterization of non-tuberculosis anomalies and research on the implications of these diseases for individuals and health systems in sub-Saharan Africa is needed to help improve existing artificial intelligence software programs and their use in countries with high tuberculosis burden.

Sections du résumé

BACKGROUND BACKGROUND
Chest X-ray offers high sensitivity and acceptable specificity as a tuberculosis screening tool, but in areas with a high burden of tuberculosis, there is often a lack of radiological expertise to interpret chest X-ray. Computer-aided detection systems based on artificial intelligence are therefore increasingly used to screen for tuberculosis-related abnormalities on digital chest radiographies. The CAD4TB software has previously been shown to demonstrate high sensitivity for chest X-ray tuberculosis-related abnormalities, but it is not yet calibrated for the detection of non-tuberculosis abnormalities. When screening for tuberculosis, users of computer-aided detection need to be aware that other chest pathologies are likely to be as prevalent as, or more prevalent than, active tuberculosis. However, non--tuberculosis chest X-ray abnormalities detected during chest X-ray screening for tuberculosis remain poorly characterized in the sub-Saharan African setting, with only minimal literature.
CASE PRESENTATION METHODS
In this case series, we report on four cases with non-tuberculosis abnormalities detected on CXR in TB TRIAGE + ACCURACY (ClinicalTrials.gov Identifier: NCT04666311), a study in adult presumptive tuberculosis cases at health facilities in Lesotho and South Africa to determine the diagnostic accuracy of two potential tuberculosis triage tests: computer-aided detection (CAD4TB v7, Delft, the Netherlands) and C-reactive protein (Alere Afinion, USA). The four Black African participants presented with the following chest X-ray abnormalities: a 59-year-old woman with pulmonary arteriovenous malformation, a 28-year-old man with pneumothorax, a 20-year-old man with massive bronchiectasis, and a 47-year-old woman with aspergilloma.
CONCLUSIONS CONCLUSIONS
Solely using chest X-ray computer-aided detection systems based on artificial intelligence as a tuberculosis screening strategy in sub-Saharan Africa comes with benefits, but also risks. Due to the limitation of CAD4TB for non-tuberculosis-abnormality identification, the computer-aided detection software may miss significant chest X-ray abnormalities that require treatment, as exemplified in our four cases. Increased data collection, characterization of non-tuberculosis anomalies and research on the implications of these diseases for individuals and health systems in sub-Saharan Africa is needed to help improve existing artificial intelligence software programs and their use in countries with high tuberculosis burden.

Identifiants

pubmed: 37620921
doi: 10.1186/s13256-023-04097-4
pii: 10.1186/s13256-023-04097-4
pmc: PMC10464059
doi:

Banques de données

ClinicalTrials.gov
['NCT04666311']

Types de publication

Case Reports Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

365

Subventions

Organisme : EDCTP
ID : RIA2018D-2498

Informations de copyright

© 2023. BioMed Central Ltd., part of Springer Nature.

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Auteurs

Naomi Glaser (N)

Faculty of Medicine, University of Zürich, Zurich, Switzerland. naomi.rueegg@uzh.ch.
Department of Health Sciences and Medicine, University of Lucerne, Lucerne, Switzerland. naomi.rueegg@uzh.ch.

Shannon Bosman (S)

Center for Community Based Research, Human Sciences Research Council, Pietermaritzburg, South Africa.

Thandanani Madonsela (T)

Center for Community Based Research, Human Sciences Research Council, Pietermaritzburg, South Africa.

Alastair van Heerden (A)

Center for Community Based Research, Human Sciences Research Council, Pietermaritzburg, South Africa.

Kamele Mashaete (K)

SolidarMed, Partnerships for Health, Maseru, Lesotho.

Bulemba Katende (B)

SolidarMed, Partnerships for Health, Maseru, Lesotho.

Irene Ayakaka (I)

SolidarMed, Partnerships for Health, Maseru, Lesotho.

Keelin Murphy (K)

Radboud University Medical Center, Nijmegen, The Netherlands.

Aita Signorell (A)

Swiss Tropical and Public Health Institute, Allschwil, Switzerland.
University of Basel, Basel, Switzerland.

Lutgarde Lynen (L)

Institute of Tropical Medicine Antwerp, Antwerp, Belgium.

Jens Bremerich (J)

Department of Radiology, Clinic of Radiology and Nuclear Medicine, University Hospital Basel, University of Basel, Basel, Switzerland.

Klaus Reither (K)

Swiss Tropical and Public Health Institute, Allschwil, Switzerland. Klaus.Reither@swisstph.ch.
University of Basel, Basel, Switzerland. Klaus.Reither@swisstph.ch.

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Classifications MeSH