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Which equation and which biomarker should be used in the Kidney Failure Risk Equation? A comparative analysis in the
Antoine Lanot1,2,3, Pierre Delanaye4,5,6, Marie Metzger7
1Normandie Univ, UNICAEN, CHU de Caen Normandie, Néphrologie, Caen, France.
Background:
The Kidney Failure Risk Equation (KFRE) is a widely used tool to estimate the 2- and 5-year risk of progression to kidney failure in patients with chronic kidney disease (CKD). The choice of estimated glomerular filtration rate (eGFR) equation and biomarker may influence its prognostic performance. We aimed at comparing the predictive performance of the KFRE when used with different eGFR equations [CKD-EPI (Chronic Kidney Disease Epidemiology Collaboration) vs. EKFC (European Kidney Function Consortium)] and biomarkers (creatinine, cystatin C, or both) in a large French CKD cohort.
Methods:
We analyzed 2168 patients with CKD stages G3-G5 from the prospective Chronic Kidney Disease Renal Epidemiology and Information Network cohort. Eight eGFR equations were evaluated in combination with both the four- and eight-variable KFRE models. Prognostic performance was assessed at 2 and 5 years using the time-dependent area under the receiver operating characteristic curve (AUROC), Brier scores, calibration plots, and decision curve analysis. Subgroup analyses were performed by age and sex.
Results:
Discrimination was uniformly high (AUROC > 0.89), but calibration patterns and decision curve analyses differed between equations. The creatinine-based CKD-EPI 2009 equation demonstrated robust and consistent performance across models and time horizons. EKFC equations-especially when using creatinine alone-showed slightly improved clinical utility at the 40% decision threshold. Cystatin C-based equations did not improve KFRE predictions compared to creatinine-based ones.
Conclusions:
In this French CKD cohort, both CKD-EPI 2009 and EKFC creatinine-based equations supported accurate risk prediction using the KFRE. These findings support the use of EKFC in European clinical practice and reinforce the importance of aligning eGFR equations with the population context when applying prognostic models.
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