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Updated: Mar 5, 2026

Isolation of Primary Human Proximal Tubule Epithelial Cells and Their Use in Creating a Microphysiological Model of the Renal Proximal Tubule
Published on: May 9, 2025
3D Proximal Tubule Tissues Recapitulate Key Aspects of Renal Physiology to Enable Nephrotoxicity Testing
Shelby M King1, J William Higgins1, Celina R Nino1
1Organovo, Inc. San Diego, CA, USA.
Abstract:
Due to its exposure to high concentrations of xenobiotics, the kidney proximal tubule is a primary site of nephrotoxicity and resulting attrition in the drug development pipeline. Current pre-clinical methods using 2D cell cultures and animal models are unable to fully recapitulate clinical drug responses due to limited in vitro functional lifespan, or species-specific differences. Using Organovo's proprietary 3D bioprinting platform, we have developed a fully cellular human in vitro model of the proximal tubule interstitial interface comprising renal fibroblasts, endothelial cells, and primary human renal proximal tubule epithelial cells to enable more accurate prediction of tissue-level clinical outcomes. Histological characterization demonstrated formation of extensive microvascular networks supported by endogenous extracellular matrix deposition. The epithelial cells of the 3D proximal tubule tissues demonstrated tight junction formation and expression of renal uptake and efflux transporters; the polarized localization and function of P-gp and SGLT2 were confirmed. Treatment of 3D proximal tubule tissues with the nephrotoxin cisplatin induced loss of tissue viability and epithelial cells in a dose-dependent fashion, and cimetidine rescued these effects, confirming the role of the OCT2 transporter in cisplatin-induced nephrotoxicity. The tissues also demonstrated a fibrotic response to TGFβ as assessed by an increase in gene expression associated with human fibrosis and histological verification of excess extracellular matrix deposition. Together, these results suggest that the bioprinted 3D proximal tubule model can serve as a test bed for the mechanistic assessment of human nephrotoxicity and the development of pathogenic states involving epithelial-interstitial interactions, making them an important adjunct to animal studies.
Insights
A novel 3D bioprinted human kidney proximal tubule model accurately predicts drug-induced nephrotoxicity and fibrosis. This advanced in vitro model improves upon traditional methods, offering better insights into kidney disease mechanisms.
Area of Science:
- Biotechnology
- Renal Physiology
- Toxicology
Background:
- The kidney proximal tubule is susceptible to xenobiotic-induced toxicity, impacting drug development.
- Current preclinical models (2D cultures, animal studies) have limitations in predicting human clinical drug responses.
- Species-specific differences and limited in vitro functional lifespan hinder accurate nephrotoxicity assessment.
Purpose of the Study:
- To develop a fully cellular, 3D bioprinted human kidney proximal tubule model.
- To create a more predictive in vitro system for assessing tissue-level clinical outcomes and nephrotoxicity.
- To investigate epithelial-interstitial interactions in kidney pathophysiology.
Main Methods:
- Utilized Organovo's 3D bioprinting platform with renal fibroblasts, endothelial cells, and proximal tubule epithelial cells.
- Histological characterization to assess tissue structure, microvascularization, and extracellular matrix deposition.
- Functional assessment of epithelial cell polarity, transporter expression (P-gp, SGLT2), and response to nephrotoxins (cisplatin) and modulators (cimetidine, TGFβ).
Main Results:
- The 3D model exhibited microvascular network formation and extracellular matrix deposition.
- Epithelial cells displayed tight junction formation and functional renal transporters (P-gp, SGLT2).
- Cisplatin induced dose-dependent nephrotoxicity, rescued by cimetidine, confirming OCT2 transporter involvement.
- TGFβ treatment induced a fibrotic response, validated by gene expression and histology.
Conclusions:
- The 3D bioprinted proximal tubule model serves as a robust platform for mechanistic nephrotoxicity assessment.
- This model aids in understanding pathogenic states involving kidney epithelial-interstitial interactions.
- It represents a valuable adjunct to traditional animal studies for drug development and toxicology.
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