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Tabata, L.

Publications and source records attributed to Tabata, L..

2 recordsLinked to original sources

Integration of Hematopoietic and Thymus-like Niches in a Human iPSC-derived Bone Marrow Organoid

Human bone marrow generates blood cells but critically lacks the thymic environment required for T cell development. Developing an integrated in vitro platform that reconstitutes both functions simultaneously remains a major challenge in regenerative and immune medicine. We asked whether a synthetic marrow could be engineered to provide both capacities. Using human induced pluripotent stem cells, we created self-organizing bone marrow organoids (iBMOs) that faithfully reproduced native stromal and vascular structures and, remarkably, supported robust thymus-like T cell differentiation. iBMOs directed hematopoietic progenitors toward functional T and dendritic cells. When engrafted into immunodeficient mice, they autonomously sustained human erythropoiesis and de novo bone formation in vivo. Single-cell transcriptomics revealed a complex niche architecture, including a hybrid cluster co-expressing stem, endothelial, and stromal markers, key to understanding this dual functionality. This bioengineered organoid-stromal system unifies bone marrow and thymic functions in a single human-derived platform, offering a scalable source of immune cells for adoptive cell therapies and regenerative applications, as well as a versatile model for studying human hematopoiesis and immunity.

systems biology↗

Human pluripotent stem cell-derived intestinal epithelial cells maintain small intestine-specific functions over time, even with repeated cell division

The human colon cancer-derived cell line Caco-2 is widely used in drug discovery due to its barrier function and transporter activity. However, Caco-2 cells have extremely low drug metabolic capacity, resulting in discrepancies with human physiology. In this study, we conducted experiments on human intestinal epithelial cells generated from pluripotent stem cell-derived organoids. We assessed cell morphology, gene expression, barrier and transporter functions, drug metabolic capacity, and cytotoxicity in relation to cell growth and the effects of cellular aging. The results indicate that organoid-derived intestinal epithelial cells may be helpful as a new model cell for drug discovery. Understanding the advantages of drug metabolic capacity and cytotoxicity among cryopreserved human enterocytes, the human colon cancer-derived cell line Caco-2, and human pluripotent stem cell-derived intestinal epithelial cells within microphysiological systems and organ-on-chip technologies is essential for the development of an appropriate model system for the small intestine.

cell biology↗