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Human ureteric bud organoids recapitulate branching morphogenesis and differentiate into functional collecting duct cell types.


ABSTRACT: Directed differentiation of human pluripotent stem cells (hPSCs) into functional ureteric and collecting duct (CD) epithelia is essential to kidney regenerative medicine. Here we describe highly efficient, serum-free differentiation of hPSCs into ureteric bud (UB) organoids and functional CD cells. The hPSCs are first induced into pronephric progenitor cells at 90% efficiency and then aggregated into spheres with a molecular signature similar to the nephric duct. In a three-dimensional matrix, the spheres form UB organoids that exhibit branching morphogenesis similar to the fetal UB and correct distal tip localization of RET expression. Organoid-derived cells incorporate into the UB tips of the progenitor niche in chimeric fetal kidney explant culture. At later stages, the UB organoids differentiate into CD organoids, which contain >95% CD cell types as estimated by single-cell RNA sequencing. The CD epithelia demonstrate renal electrophysiologic functions, with ENaC-mediated vectorial sodium transport by principal cells and V-type ATPase proton pump activity by FOXI1-induced intercalated cells.

SUBMITTER: Shi M 

PROVIDER: S-EPMC9957856 | biostudies-literature | 2023 Feb

REPOSITORIES: biostudies-literature

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Human ureteric bud organoids recapitulate branching morphogenesis and differentiate into functional collecting duct cell types.

Shi Min M   McCracken Kyle W KW   Patel Ankit B AB   Zhang Weitao W   Ester Lioba L   Valerius M Todd MT   Bonventre Joseph V JV  

Nature biotechnology 20220829 2


Directed differentiation of human pluripotent stem cells (hPSCs) into functional ureteric and collecting duct (CD) epithelia is essential to kidney regenerative medicine. Here we describe highly efficient, serum-free differentiation of hPSCs into ureteric bud (UB) organoids and functional CD cells. The hPSCs are first induced into pronephric progenitor cells at 90% efficiency and then aggregated into spheres with a molecular signature similar to the nephric duct. In a three-dimensional matrix, t  ...[more]

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