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Updated: Nov 2, 2025

Isogenic Kidney Glomerulus Chip Engineered from Human Induced Pluripotent Stem Cells
Published on: November 4, 2022
Bioprinting of kidney in vitro models: cells, biomaterials, and manufacturing techniques
Maaike F J Fransen1,2, Gabriele Addario1, Carlijn V C Bouten2
1MERLN Institute for Technology-inspired Regenerative Medicine, Department of Complex Tissue Regeneration, Maastricht University, the Netherlands.
Abstract:
The number of patients with end-stage renal disease is continuously increasing worldwide. The only therapies for these patients are dialysis and organ transplantation, but the latter is limited due to the insufficient number of donor kidneys available. Research in kidney disease and alternative therapies are therefore of outmost importance. In vitro models that mimic human kidney functions are essential to provide better insights in disease and ultimately novel therapies. Bioprinting techniques have been increasingly used to create models with some degree of function, but their true potential is yet to be achieved. Bioprinted renal tissues and kidney-like constructs presents challenges, for example, choosing suitable renal cells and biomaterials for the formulation of bioinks. In addition, the fabrication of complex renal biological structures is still a major bottleneck. Advances in pluripotent stem cell-derived renal progenitors has contributed to in vivo-like rudiment structures with multiple renal cells, and these started to make a great impact on the achieved models. Natural- or synthetic-based biomaterial inks, such as kidney-derived extracellular matrix and gelatin-fibrin hydrogels, which show the potential to partially replicate in vivo-like microenvironments, have been largely investigated for bioprinting. As the field progresses, technological, biological and biomaterial developments will be required to yield fully functional in vitro tissues that can contribute to a better understanding of renal disease, to improve predictability in vitro of novel therapeutics, and to facilitate the development of alternative regenerative or replacement treatments. In this review, we resume the main advances on kidney in vitro models reported so far.
Insights
Bioprinting offers promising in vitro models for kidney disease research, but challenges remain in cell choice, biomaterials, and complex structure fabrication for developing novel therapies.
Area of Science:
- Biomedical Engineering
- Regenerative Medicine
- Nephrology
Background:
- Increasing global incidence of end-stage renal disease necessitates novel therapeutic strategies.
- Current treatments like dialysis and transplantation are limited by donor organ scarcity.
- In vitro models are crucial for understanding kidney disease and developing new treatments.
Purpose of the Study:
- To review advances in bioprinting for creating functional in vitro kidney models.
- To highlight challenges and opportunities in developing kidney in vitro models.
- To discuss the potential of bioprinted tissues for disease research and therapeutic development.
Main Methods:
- Review of current literature on bioprinting techniques for renal tissue engineering.
- Analysis of biomaterials and cell sources used in kidney bioprinting.
- Discussion of technological and biological challenges in fabricating complex renal structures.
Main Results:
- Bioprinting shows potential for creating functional kidney-like constructs.
- Pluripotent stem cell-derived renal progenitors are advancing model complexity.
- Biomaterials like ECM and hydrogels are being investigated for bioink formulations.
Conclusions:
- Further advancements in technology, biology, and biomaterials are needed for fully functional kidney in vitro models.
- Improved models will enhance understanding of kidney disease and therapeutic predictability.
- Bioprinting holds potential for developing regenerative and replacement treatments for kidney failure.

