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Development and Validation of a Canadian Prediction Equation for Incident CKD Using Population-Based, Administrative Data

0Citations signalées — pas une note de qualité
6Institutions déclarées
1Pays d’affiliation déclarés

Résumé fourni par la source

Background: ) could aid in prevention and disease surveillance. Objective: Develop and validate prediction equations to identify individuals at risk of incident CKD using routinely collected administrative data with and without urine albumin-to-creatinine ratio (ACR). Design: This is a retrospective cohort study using administrative data. Setting: This study was conducted in Manitoba and Ontario, Canada. Patients: from Manitoba (derivation cohort; 2006-2016) with external validation in 7 747 513 adults from Ontario, Canada. Measurements: during and up to 10 years of follow-up. In an additional analysis, we defined incident CKD using repeat eGFR measures. Methods: Time-to-event models, accounting for the competing risk of death, were used to predict new-onset CKD from one to nine years with a data-driven model reduction. Prediction equations stratifying individuals with and without ACR measurements were derived internally and externally validated. Results: , median (interquartile range) ACR 0.7 mg/mmol (1-3)], incident CKD occurred in 11.4% during a median follow-up time of 4.5 (Q1 = 2.3, Q3 = 7.6) years of follow-up. The final model included six variables (age, sex, baseline eGFR, hemoglobin, hypertension, and diabetes) and yielded a five-year area under the curve of 86.0 (no ACR) and 80.2 (with ACR). Model performance was excellent in external validation. Limitations: Only individuals with measures of all model predictors (complete case analysis) were included. Conclusion: Equations using routinely collected population-level, administrative data variables can accurately predict the onset of CKD with or without ACR.

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Contrôle bibliographique ouvert

DOI retrouvé dans Crossref DOI retrouvé ; titre concordant.

Titre Crossref
Development and Validation of a Canadian Prediction Equation for Incident CKD Using Population-Based, Administrative Data
Date Crossref
01/05/2026
Éditeur
SAGE Publications
Type
journal-article

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Institutions déclarées

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Sujets associés

Chronic Kidney Disease and DiabetesInflammatory Biomarkers in Disease PrognosisDialysis and Renal Disease Management

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