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Development and validation of clinical prediction score for mortality in tuberculosis patients

Pattama SaisudjaritDepartment of Applied Science, School of Sciences, University of Phayao, Phayao, Thailand; Medicine Staff Organization, Thap Khlo Hospital, Phichit, ThailandSurasak SaokaewDivision of Social and Administration Pharmacy, Department of Pharmaceutical Care, School of Pharmaceutical Sciences, University of Phayao, Phayao, Thailand; Center of Excellence in Bioactive Resources for Innovative Clinical Applications, Chulalongkorn University, Bangkok, Thailand; Unit of Excellence on Clinical Outcomes Research and IntegratioN (UNICORN), School of Pharmaceutical Sciences, University of Phayao, Phayao, ThailandAcharaporn DuangjaiSchool of Medical Sciences, University of Phayao, Phayao, ThailandAnurak PrasatkhetragarnDepartment of Applied Science, School of Sciences, University of Phayao, Phayao, Thailand; School of Sciences, University of Phayao, Phayao, ThailandSukrit KanchanasurakitUnit of Excellence on Clinical Outcomes Research and IntegratioN (UNICORN), School of Pharmaceutical Sciences, University of Phayao, Phayao, Thailand; Division of Clinical Pharmacy, Department of Pharmaceutical Care, School of Pharmaceutical Sciences, University of Phayao, Phayao, Thailand; Division of Pharmaceutical Care, Department of Pharmacy, Phrae Hospital, Phrae, ThailandPochamana PhisalprapaDivision of Ambulatory Medicine, Department of Medicine, Faculty of Medicine Siriraj Hospital, Mahidol University, Bangkok, Thailand
Narra J (Sinta 1)Vol. 5 No. 2 (2025)21 April 2025hal. e1701-e1701
DOI10.52225/narra.v5i2.1701

Abstrak

Tuberculosis (TB) remains a global and national public health concern, with mortality posing a significant challenge in treatment programs. The aim of this study was to develop a simple risk-scoring system to predict mortality among TB patients and assess its applicability in resource-limited settings. Data from TB patient registries in Phichit Province, Thailand, covering from January 1, 2017, to December 31, 2020, were used. Eligible participants were aged ≥18 years, having completed treatment or death. A risk score was developed and internally validated using logistic regression. Coefficients were used to assign weighted points to predictors and applied to a validation cohort to assess diagnostic performance. The performance was evaluated by generating a receiver operating characteristic (ROC) curve. The study included 2,196 participants, randomly allocated into derivation (n=1,600) and validation (n=596) cohorts. The risk score included Charlson Comorbidity Index scores (1–2 points and ≥3 points) and TB meningitis. It showed an area under ROC curve (AuROC) of 74.34% (95%CI: 70.80–77.88%) with good calibration (Hosmer-Lemeshow χ2: 0.53; p= 0.97). Positive likelihood ratios for low (≤3) and high (≥6) risk were 1.06 (95%CI: 1.03–1.09) and 31.62 (95%CI: 7.23–138.37), respectively. In the validation cohort, AuROC was 79.50% (95%CI: 74.40–84.60%), with 75% and 100% certainty in low- and high-risk groups. In conclusion, this simple risk score, using routine data and two predictors, can predict mortality in TB patients. It may aid clinicians in planning appropriate care strategies.  Nevertheless, the tool should undergo external validation before being implemented in clinical practice.

Kata Kunci

Mortalitytuberculosisrisk scorepredictionscreening toolMortalitytuberculosisrisk scorepredictionscreening tool

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