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Updated: May 18, 2026

A Quantitative Detection Method for MicroRNAs in the Kidney of an Ischemic Kidney Injury Mouse Model
Published on: September 11, 2020
Noninvasive analyses of kidney injury molecule-1 messenger RNA in kidney transplant recipients with graft dysfunction
A L Nogare1, T Dalpiaz, F J V Veronese
1Post-Graduate Medical Sciences Program, School of Medicine, Universidade Federal do Rio Grande do Sul, Porto Alegre, Brazil.
Background:
Kidney graft fibrosis is a major factor related to chronic loss of kidney function. At present, the finding of fibrosis depends on the analysis of tissue in the renal biopsy, which has important limitations. In this study, we evaluated the messenger mRNA transcription and gene expression of kidney injury molecule-1 (KIM-1) in kidney tissue and in urinary sediment cells of kidney transplant patients with graft dysfunction aiming at the development of techniques that may allow the noninvasive diagnosis of interstitral fibrosis/tubular atrophy (IF/TA).
Patients And Methods:
RNA extracted from cells in tissue and urine of 77 renal transplant patients whose biopsies were classified according to the Banff scheme-2007. Four diagnostic groups were established: (1) acute tubular necrosis (n = 9); (2) acute rejection (n = 49); (3) acute calcineurin inhibitors nephrotoxicity (n = 10); and (4) interstitial fibrosis and tubular atrophy (IFTA, n = 29). Tissue and urine cell RNA was amplified and quantification were made by real-time polymerase chain reactron. Data from the quantification of gene expression are presented as median and 25th to 75th percentiles.
Results:
Messenger RNA levels of the KIM-1 gene were higher in the biopsies (26.17; 3.38-294.53) and urinary sediment cells (0.09; 0-5.81) of the patients classified as having IF/TA as compared with all others groups. A significant correlation between gene expression in samples of urine and tissue cells was found (P < .01).
Conclusion:
These initial data suggests that KIM-1 gene mRNA quantification can be used as a noninvasive biomarker of IF/TA.
Insights
Quantifying kidney injury molecule-1 (KIM-1) messenger mRNA in urine offers a noninvasive method for diagnosing interstitial fibrosis/tubular atrophy (IF/TA) in kidney transplant patients. This approach may overcome limitations of traditional renal biopsies.
Area of Science:
- Nephrology
- Molecular Biology
- Transplantation Immunology
Background:
- Kidney graft fibrosis is a primary cause of chronic kidney dysfunction post-transplant.
- Current diagnosis relies on invasive renal biopsies, which have significant limitations.
- Developing noninvasive diagnostic methods for IF/TA is crucial.
Purpose of the Study:
- To evaluate messenger mRNA transcription and gene expression of KIM-1 in kidney tissue and urine.
- To assess the potential of KIM-1 as a noninvasive biomarker for IF/TA.
- To develop improved diagnostic techniques for kidney transplant dysfunction.
Main Methods:
- RNA was extracted from tissue and urine cells of 77 renal transplant patients.
- Patients were categorized into four groups based on Banff criteria, including IF/TA (n=29).
- Real-time PCR quantified KIM-1 gene expression; data presented as median and interquartile range.
Main Results:
- KIM-1 mRNA levels were significantly higher in both kidney tissue and urinary sediment of IF/TA patients compared to other groups.
- A strong correlation (P < .01) was observed between KIM-1 gene expression in urine and tissue samples.
- This suggests urinary KIM-1 reflects tissue-level changes.
Conclusions:
- KIM-1 gene mRNA quantification shows promise as a noninvasive biomarker for IF/TA.
- This method could potentially reduce the need for invasive biopsies in kidney transplant recipients.
- Further validation is needed to establish KIM-1 as a standard diagnostic tool.
Related Concept Videos
Kidney Transplant I: Introduction
Kidney Transplant III: Nursing Management
Kidney Transplant II: Surgical Procedure
Acute Kidney Injury IV: Diagnostic Studies and Prevention
Drug Dosing in Renal Diseases: Measurement of Glomerular Filtration Rate
Acute Kidney Injury I: Introduction
