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Updated: Oct 25, 2025

Physiology Lab Demonstration: Glomerular Filtration Rate in a Rat
Published on: July 26, 2015
Assessment of kidney function: clinical indications for measured GFR
Natalie Ebert1, Sebastjan Bevc2, Arend Bökenkamp3
1Institute of Public Health, Charité Universitätsmedizin Berlin, Berlin, Germany.
Insights
Serum creatinine for estimating glomerular filtration rate (GFR) can be inaccurate. This review highlights situations where measured GFR is superior for accurate kidney function assessment and clinical decisions.
Area of Science:
- Nephrology
- Clinical Chemistry
- Diagnostic Medicine
Background:
- Serum creatinine is the standard for estimating glomerular filtration rate (GFR), but is influenced by numerous non-renal factors.
- These influences can lead to patient misclassification and suboptimal clinical decisions.
- Alternative markers like cystatin C and direct GFR measurement offer potential improvements.
Purpose of the Study:
- To review clinical scenarios where creatinine-based estimated GFR (eGFR) is unreliable.
- To emphasize the limitations of creatinine in specific patient populations and conditions.
- To advocate for the use of measured GFR (mGFR) in select cases for improved accuracy.
Main Methods:
- Literature review focusing on clinical scenarios impacting creatinine-based eGFR accuracy.
- Analysis of conditions where cystatin C and measured GFR (mGFR) may provide more reliable kidney function assessment.
- Emphasis on practical applications for practicing clinicians.
Main Results:
- Creatinine-based eGFR is frequently inaccurate in individuals with extreme body composition, Black race, liver cirrhosis, and advanced chronic kidney disease.
- Discrepancies between creatinine and cystatin C eGFR warrant further investigation, potentially with mGFR.
- Even cystatin C-based eGFR has limitations in certain clinical contexts, necessitating mGFR.
Conclusions:
- Creatinine-based GFR estimation has substantial limitations in various clinical settings.
- Measured GFR using exogenous markers like iohexol provides a more accurate assessment of kidney function in these challenging cases.
- Standardized mGFR procedures are crucial for advancing personalized medicine and improving patient care.
Abstract:
In the vast majority of cases, glomerular filtration rate (GFR) is estimated using serum creatinine, which is highly influenced by age, sex, muscle mass, body composition, severe chronic illness and many other factors. This often leads to misclassification of patients or potentially puts patients at risk for inappropriate clinical decisions. Possible solutions are the use of cystatin C as an alternative endogenous marker or performing direct measurement of GFR using an exogenous marker such as iohexol. The purpose of this review is to highlight clinical scenarios and conditions such as extreme body composition, Black race, disagreement between creatinine- and cystatin C-based estimated GFR (eGFR), drug dosing, liver cirrhosis, advanced chronic kidney disease and the transition to kidney replacement therapy, non-kidney solid organ transplant recipients and living kidney donors where creatinine-based GFR estimation may be invalid. In contrast to the majority of literature on measured GFR (mGFR), this review does not include aspects of mGFR for research or public health settings but aims to reach practicing clinicians and raise their understanding of the substantial limitations of creatinine. While including cystatin C as a renal biomarker in GFR estimating equations has been shown to increase the accuracy of the GFR estimate, there are also limitations to eGFR based on cystatin C alone or the combination of creatinine and cystatin C in the clinical scenarios described above that can be overcome by measuring GFR with an exogenous marker. We acknowledge that mGFR is not readily available in many centres but hope that this review will highlight and promote the expansion of kidney function diagnostics using standardized mGFR procedures as an important milestone towards more accurate and personalized medicine.
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