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Updated: Jul 9, 2026

Physiology Lab Demonstration: Glomerular Filtration Rate in a Rat
Published on: July 26, 2015
Monitoring renal function and limitations of renal function tests
1Department of Biophysics, Nuclear Medicine and Clinical Neurophysiology, Bicêtre Hospital, Assistance Publique-Hôpitaux de Paris, University of Paris-Sud, Le Kremlin Bicêtre Cedex, France. alain.prigent@bct.aphp.fr
Insights
Estimating glomerular filtration rate (GFR) is key for chronic kidney disease (CKD) management. Current creatinine-based equations have limitations, especially in certain populations, highlighting the need for accurate GFR measurement methods.
Area of Science:
- Nephrology
- Clinical Chemistry
- Public Health
Background:
- Chronic kidney disease (CKD) is a global health issue with severe outcomes.
- Glomerular filtration rate (GFR) estimation is crucial for CKD definition, classification, screening, and monitoring.
- Current guidelines recommend GFR estimation equations based on serum creatinine.
Purpose of the Study:
- To evaluate the clinical efficiency and relevance of GFR estimation equations.
- To assess bias, precision, and reproducibility in diverse populations and indications.
- To compare creatinine-based equations with cystatin C-based equations and explore GFR measurement methods.
Main Methods:
- Literature review of recent studies on GFR estimation equations.
- Analysis of bias, precision, and reproducibility of Cockcroft-Gault (C-G), Modification of Diet in Renal Disease (MDRD) study, Schwartz, and Counahan-Barratt equations.
- Consideration of cystatin C-based equations and GFR clearance methods.
Main Results:
- Creatinine-based equations have limitations, particularly in normal GFR ranges, kidney transplant recipients, and pediatric populations.
- The MDRD equation generally outperforms the C-G equation but still exhibits bias and limited precision.
- Cystatin C-based equations are not currently recommended for clinical practice.
- Many indications remain for GFR measurement using clearance methods, which are accurate and reproducible.
Conclusions:
- Creatinine-based GFR estimation equations have significant limitations impacting their clinical utility.
- Accurate GFR measurement using clearance methods is often necessary.
- Further research may be needed to refine GFR estimation or identify optimal measurement strategies for all patient groups.
Abstract:
Chronic kidney disease (CKD) is a world-wide public health problem, with adverse outcomes of kidney failure, cardiovascular disease, and premature death. The National Kidney Foundation, through its Kidney Disease Quality Outcome Initiative (K/DOQI) and other National institutions, recommend glomerular filtration rate (GFR) estimates for the definition, classification, screening, and monitoring of CKD. Prediction equations based on serum creatinine values were chosen both for adults (Cockcroft-Gault [C-G] and Modification of Diet in Renal Disease [MDRD] study equations) and for children (Schwartz and Counahan-Barratt equations). This review aims to evaluate from recent literature the clinical efficiency and relevance of these equations in terms of bias, precision, and reproducibility in different specific indications (eg, screening CKD, assessment of disease progression, or therapy efficacy) in different populations. Because these prediction equations based on serum creatinine have limitations, especially in the normal or near-normal GFR range, kidney transplant recipients, and pediatric populations, other prediction equations based on serum cystatin C value were also considered as possibly more sensitive GFR surrogate markers. Recent guidelines state that the cystatin C-based prediction equation cannot be recommended for use in clinical practice. With prediction equations based on serum creatinine, the National Kidney Disease Education Program (NKDEP) recommendations are to report a numerical estimate in round numbers only for GFR values <60 mL/min per 1.73 m(2). The MDRD equation generally outperforms the C-G equation but may still have a high level of bias, depending on creatinine assay calibration, and low precision with, at best, approximately 80% of estimated GFR in the "accuracy range" of 70-130% of the measured GFR value, even in patients with known CKD. According to Kidney Disease Improving Global Outcomes (KDIGO) recommendations, many indications remain for GFR measurements using a clearance method. In that context, it should be recalled that radiolabeled-tracer plasma or urinary clearance methods, are safe, simple, accurate and reproducible.
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