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Advances in predictive in vitro models of drug-induced nephrotoxicity
Joanne Y-C Soo1,2, Jitske Jansen3, Rosalinde Masereeuw3
1Department of Paediatrics, The University of Melbourne, Parkville, Victoria, Australia.
Abstract:
In vitro screens for nephrotoxicity are currently poorly predictive of toxicity in humans. Although the functional proteins that are expressed by nephron tubules and mediate drug susceptibility are well known, current in vitro cellular models poorly replicate both the morphology and the function of kidney tubules and therefore fail to demonstrate injury responses to drugs that would be nephrotoxic in vivo. Advances in protocols to enable the directed differentiation of pluripotent stem cells into multiple renal cell types and the development of microfluidic and 3D culture systems have opened a range of potential new platforms for evaluating drug nephrotoxicity. Many of the new in vitro culture systems have been characterized by the expression and function of transporters, enzymes, and other functional proteins that are expressed by the kidney and have been implicated in drug-induced renal injury. In vitro platforms that express these proteins and exhibit molecular biomarkers that have been used as readouts of injury demonstrate improved functional maturity compared with static 2D cultures and represent an opportunity to model injury to renal cell types that have hitherto received little attention. As nephrotoxicity screening platforms become more physiologically relevant, they will facilitate the development of safer drugs and improved clinical management of nephrotoxicants.
Insights
New in vitro models using stem cells and advanced culture systems improve prediction of drug-induced kidney injury. These physiologically relevant platforms better replicate kidney tubule function for safer drug development.
Area of Science:
- Nephrology
- Toxicology
- Stem Cell Biology
Background:
- Current in vitro nephrotoxicity screens poorly predict human toxicity.
- Existing cellular models lack the morphology and function of kidney tubules, failing to show drug-induced injury responses.
Purpose of the Study:
- To evaluate novel in vitro platforms for assessing drug nephrotoxicity.
- To improve the predictive accuracy of preclinical drug safety testing.
Main Methods:
- Utilizing directed differentiation of pluripotent stem cells into renal cell types.
- Developing and employing microfluidic and 3D culture systems.
- Characterizing new platforms by expression and function of key renal proteins and biomarkers.
Main Results:
- New in vitro systems exhibit improved functional maturity compared to static 2D cultures.
- These platforms express critical kidney transporters, enzymes, and proteins involved in drug injury.
- They offer opportunities to model injury in previously understudied renal cell types.
Conclusions:
- Advanced in vitro platforms enhance the physiological relevance of nephrotoxicity screening.
- These models facilitate the development of safer drugs.
- Improved screening will aid in the clinical management of nephrotoxic agents.
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