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Updated: Sep 3, 2026

In Vivo Osteo-organoid Approach for Harvesting Therapeutic Hematopoietic Stem/Progenitor Cells
Published on: February 16, 2024
Human iPSC-derived bone marrow organoids with integrated hematopoietic and T cell-supportive niches
Jiyoung Lee1, Tomoyuki Kawasaki1, Lilika Tabata1
1Center for Regenerative Medicine, National Center for Child Health and Development, Tokyo, 157-8535, Japan.
Background:
The anatomical separation of bone marrow and thymus limits the efficient generation of human immune cells in vitro and constrains experimental platforms for modeling integrated hematopoiesis. We investigated whether a synthetic human bone marrow could be engineered to support both hematopoietic and T-lineage-associated functions.
Methods:
We generated human induced pluripotent stem cell-derived bone marrow organoids (iBMOs) that self-organize into stromal, vascular, and hematopoietic compartments and provide microenvironmental cues supportive of T cell differentiation.
Results:
iBMOs produced hematopoietic progenitors and yielded stable stromal stem cell lines (iBOSS) that expressed Notch-associated molecules and supported the differentiation of iPSC-derived hematopoietic progenitors toward T-lineage and dendritic cell-associated populations in vitro. Following transplantation into immunodeficient mice, iBMOs sustained human erythropoiesis and underwent bone formation, demonstrating autonomous niche activity in vivo.
Conclusion:
This integrated bone marrow organoid platform provides a physiologically relevant system for studying human hematopoietic development and immune cell differentiation and offers a scalable foundation for regenerative medicine and immunotherapy applications.
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