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Efficient Vascularization of Kidney Organoids through Intracelomic Transplantation in Chicken Embryos
Published on: February 17, 2023
Kidney organoids: a pioneering model for kidney diseases
Murat Tekguc1, Ronald C VAN Gaal2, Sebastien G M Uzel2
1Nephrology Division, Department of Medicine, Massachusetts General Hospital, Boston, Massachusetts; Harvard Medical School, Boston, Massachusetts; Harvard Stem Cell Institute (HSCI), Cambridge, Massachusetts.
Abstract:
The kidney is a vital organ that regulates the bodily fluid and electrolyte homeostasis via tailored urinary excretion. Kidney injuries that cause severe or progressive chronic kidney disease have driven the growing population of patients with end-stage kidney disease, leading to substantial patient morbidity and mortality. This irreversible kidney damage has also created a huge socioeconomical burden on the healthcare system, highlighting the need for novel translational research models for progressive kidney diseases. Conventional research methods such as in vitro 2D cell culture or animal models do not fully recapitulate complex human kidney diseases. By contrast, directed differentiation of human induced pluripotent stem cells enables in vitro generation of patient-specific 3D kidney organoids, which can be used to model acute or chronic forms of hereditary, developmental, and metabolic kidney diseases. Furthermore, when combined with biofabrication techniques, organoids can be used as building blocks to construct vascularized kidney tissues mimicking their in vivo counterpart. By applying gene editing technology, organoid building blocks may be modified to minimize the process of immune rejection in kidney transplant recipients. In the foreseeable future, the universal kidney organoids derived from HLA-edited/deleted induced pluripotent stem cell (iPSC) lines may enable the supply of bioengineered organotypic kidney structures that are immune-compatible for the majority of the world population. Here, we summarize recent advances in kidney organoid research coupled with novel technologies such as organoids-on-chip and biofabrication of 3D kidney tissues providing convenient platforms for high-throughput drug screening, disease modelling, and therapeutic applications.
Insights
Human kidney organoids derived from induced pluripotent stem cells offer advanced models for studying kidney diseases and developing new therapies. These 3D bioengineered tissues hold promise for personalized medicine and reducing transplant rejection.
Area of Science:
- Regenerative Medicine
- Stem Cell Biology
- Bioengineering
Background:
- Kidney diseases cause significant morbidity, mortality, and healthcare costs.
- Current research models (2D cultures, animal models) fail to fully replicate human kidney diseases.
- There is a critical need for advanced translational research models for progressive kidney diseases.
Purpose of the Study:
- To summarize recent advances in kidney organoid research.
- To highlight novel technologies like organoids-on-chip and biofabrication for kidney tissue engineering.
- To discuss the potential of kidney organoids for drug screening, disease modeling, and transplantation.
Main Methods:
- Directed differentiation of human induced pluripotent stem cells (iPSCs) into 3D kidney organoids.
- Integration of organoids with biofabrication techniques to create vascularized kidney tissues.
- Application of gene editing technologies (e.g., HLA editing) to iPSCs for immune compatibility.
Main Results:
- Patient-specific kidney organoids can model various kidney diseases in vitro.
- Biofabricated vascularized kidney tissues mimic in vivo kidney structures.
- Gene-edited iPSC-derived organoids show potential for immune-compatible kidney constructs.
Conclusions:
- Kidney organoids represent a significant advancement over traditional models for kidney disease research.
- Organoids-on-chip and biofabrication offer platforms for high-throughput drug screening and disease modeling.
- Universal, immune-compatible kidney organoids could revolutionize kidney transplantation and regenerative medicine.

