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Unilateral Ureteral Obstruction Model for Investigating Kidney Interstitial Fibrosis
Published on: April 25, 2025
Precision-cut human kidney slices as a model to elucidate the process of renal fibrosis
Elisabeth G D Stribos1, Theerut Luangmonkong2, Anna M Leliveld3
1Division of Nephrology, Department of Internal Medicine, University Medical Center Groningen, University of Groningen, Groningen, The Netherlands; Department of Pharmaceutical Technology and Biopharmacy, Groningen Research Institute of Pharmacy, University of Groningen, Groningen, The Netherlands.
Abstract:
Chronic kidney disease is a major health concern, and experimental models bridging the gap between animal studies and clinical research are currently lacking. Here, we evaluated precision-cut kidney slices (PCKSs) as a potential model for renal disease. PCKSs were prepared from human cortical tissue obtained from tumor nephrectomies and cultured up to 96 hours. Morphology, cell viability, and metabolic functionality (ie, uridine 5'-diphospho-glucuronosyltransferase and transporter activity) were determined to assess the integrity of PCKSs. Furthermore, inflammatory and fibrosis-related gene expressions were characterized. Finally, to validate the model, renal fibrogenesis was induced using transforming growth factor β1 (TGF-β1). Preparation of PCKSs induced an inflammatory tissue response, whereas long-term incubation (96 hours) induced fibrogenesis as shown by an increased expression of collagen type 1A1 (COL1A1) and fibronectin 1 (FN1). Importantly, PCKSs remained functional for more than 48 hours as evidenced by active glucuronidation and phenolsulfonphthalein uptake. In addition, cellular diversity appeared to be maintained, yet we observed a clear loss of nephrin messenger RNA levels suggesting that our model might not be suitable to study the role of podocytes in renal pathology. Moreover, TGF-β1 exposure augmented fibrosis, as illustrated by an increased expression of multiple fibrosis markers including COL1A1, FN1, and α-smooth muscle actin. In conclusion, PCKSs maintain their renal phenotype during culture and appear to be a promising model to investigate renal diseases, for example, renal fibrosis. Moreover, the human origin of PCKSs makes this model very suitable for translational research.
Insights
Precision-cut kidney slices (PCKSs) offer a promising human model for studying kidney diseases like fibrosis. These slices maintain function and phenotype, aiding translational research in renal pathology.
Area of Science:
- Nephrology
- Translational Medicine
- Experimental Pathology
Background:
- Chronic kidney disease (CKD) lacks adequate experimental models bridging animal studies and human clinical research.
- There is a need for reliable in vitro models using human tissue for studying renal diseases.
Purpose of the Study:
- To evaluate precision-cut kidney slices (PCKSs) as a viable experimental model for renal disease research.
- To assess the integrity, functionality, and suitability of human PCKSs for investigating renal fibrosis.
Main Methods:
- Human cortical tissue from nephrectomies was used to prepare PCKSs.
- PCKSs were cultured up to 96 hours, assessing morphology, viability, and metabolic functions (UGT, transporter activity).
- Gene expression of inflammatory and fibrosis markers was analyzed, and renal fibrogenesis was induced with TGF-β1.
Main Results:
- PCKSs maintained structural integrity and metabolic functionality for over 48 hours.
- Long-term culture (96 hours) induced fibrogenesis, evidenced by increased collagen type 1A1 (COL1A1) and fibronectin 1 (FN1) expression.
- TGF-β1 exposure significantly augmented fibrosis markers, confirming the model's responsiveness.
Conclusions:
- PCKSs retain their renal phenotype and functionality during culture, representing a promising model for investigating renal diseases, particularly fibrosis.
- The human origin of PCKSs makes them highly suitable for translational research in nephrology.
- The model may not be ideal for studying podocyte-specific roles due to observed nephrin mRNA level reduction.

