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Updated: Sep 2, 2025

Transplantation of Human Induced Pluripotent Stem Cell-Derived Microglia in Immunocompetent Mice Brain via Non-Invasive Transnasal Route
Published on: May 31, 2022
Replacement of Mouse Microglia With Human Induced Pluripotent Stem Cell (hiPSC)-Derived Microglia in Mouse
Ari Ogaki1, Yuji Ikegaya1,2,3, Ryuta Koyama1,2
1Laboratory of Chemical Pharmacology, Graduate School of Pharmaceutical Sciences, The University of Tokyo, Bunkyo, Japan.
Abstract:
Microglia, the major immune cells in the brain, are reported to differ in gene expression patterns among species. Therefore, it would be preferable in some cases to use human microglia rather than mouse microglia in microglia-targeted disease research. In the past half a decade, researchers have developed in vivo transplantation methods in which human induced pluripotent stem cell-derived microglia (hiPSC-MG) are transplanted into a living mouse brain. However, in vivo transplantation methods are not necessarily accessible to all researchers due to the difficulty of obtaining the materials needed and the transplantation technique itself. In addition, for in vivo systems for microglia-targeted drug screening, it is difficult to control the pharmacokinetics, especially blood-brain barrier permeability. Therefore, in addition to existing in vivo transplantation systems, the development of an ex vivo transplantation system would help to further evaluate the properties of hiPSC-MG. In this study, we aimed to establish a method to efficiently transplant hiPSC-MG into cultured mouse hippocampal slices. We found that approximately 80% of the total microglia in a cultured slice were replaced by hiPSC-derived microglia when innate microglia were pharmacologically removed prior to transplantation. Furthermore, when neuronal death was induced by applying Kainic acid (KA) to slice cultures, transplanted hiPSC-MG changed their morphology and phagocytosed cell debris. Thus, this study provides a method to transplant hiPSC-MG into the mouse hippocampal slice cultures with a high replacement rate. Because the transplanted microglia survived and exerted phagocytic functions, this method will be useful for evaluating the properties of hiPSC-MG ex vivo.
Insights
Researchers developed an ex vivo method to transplant human induced pluripotent stem cell-derived microglia (hiPSC-MG) into mouse brain slices. This technique efficiently replaces native microglia, aiding in disease research and drug screening.
Area of Science:
- Neuroscience
- Stem Cell Biology
- Immunology
Background:
- Microglia, the brain's immune cells, exhibit species-specific gene expression, necessitating human microglia for accurate disease research.
- Existing in vivo transplantation of human induced pluripotent stem cell-derived microglia (hiPSC-MG) into mouse brains faces accessibility and pharmacokinetic control challenges.
- An ex vivo transplantation system is needed to complement in vivo methods for evaluating hiPSC-MG properties.
Purpose of the Study:
- To establish an efficient ex vivo method for transplanting hiPSC-MG into cultured mouse hippocampal slices.
- To assess the replacement rate of endogenous microglia by transplanted hiPSC-MG.
- To evaluate the functional capacity of transplanted hiPSC-MG in a disease model.
Main Methods:
- Pharmacological removal of endogenous microglia from cultured mouse hippocampal slices.
- Transplantation of hiPSC-MG into prepared slice cultures.
- Induction of neuronal death using Kainic acid (KA) to simulate disease conditions.
Main Results:
- Successful transplantation of hiPSC-MG into mouse hippocampal slice cultures.
- Approximately 80% replacement of endogenous microglia by hiPSC-MG after pharmacological removal.
- Transplanted hiPSC-MG demonstrated morphological changes and phagocytosis of cell debris following KA-induced neuronal death.
Conclusions:
- A novel and efficient ex vivo method for hiPSC-MG transplantation into mouse hippocampal slices has been established.
- The transplanted hiPSC-MG survive and exhibit functional phagocytic activity in an ex vivo model.
- This method provides a valuable tool for evaluating hiPSC-MG properties and facilitating microglia-targeted research and drug screening.

