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Synthetic augmentation of bilirubin metabolism in human pluripotent stem cell-derived liver organoids.


ABSTRACT: UGT1A1 (UDP glucuronosyltransferase family 1 member A1) is the primary enzyme required for bilirubin conjugation, which is essential for preventing hyperbilirubinemia. Animal models lack key human organic anion transporting polypeptides with distinct epigenetic control over bilirubin metabolism, necessitating a human model to interrogate the regulatory mechanism behind UGT1A1 function. Here, we use induced pluripotent stem cells to develop human liver organoids that can emulate conjugation failure phenotype. Bilirubin conjugation assays, chromatin immunoprecipitation, and transcriptome analysis elucidated the role of glucocorticoid antagonism in UGT1A1 activation. This antagonism prevents the binding of transcriptional repressor MECP2 at the expense of NRF2 with associated off-target effects. Therefore, we introduced functional GULO (L-gulonolactone oxidase) in human organoids to augment intracellular ascorbate for NRF2 reactivation. This engineered organoid conjugated more bilirubin and protected against hyperbilirubinemia when transplanted in immunosuppressed Crigler-Najjar syndrome rat model. Collectively, we demonstrate that our organoid system serves as a manipulatable model for interrogating hyperbilirubinemia and potential therapeutic development.

SUBMITTER: Reza HA 

PROVIDER: S-EPMC10679658 | biostudies-literature | 2023 Nov

REPOSITORIES: biostudies-literature

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Synthetic augmentation of bilirubin metabolism in human pluripotent stem cell-derived liver organoids.

Reza Hasan Al HA   Farooqui Zishaan Z   Reza Abid Al AA   Conroy Callen C   Iwasawa Kentaro K   Ogura Yasuhiro Y   Okita Keisuke K   Osafune Kenji K   Takebe Takanori T  

Stem cell reports 20231012 11


UGT1A1 (UDP glucuronosyltransferase family 1 member A1) is the primary enzyme required for bilirubin conjugation, which is essential for preventing hyperbilirubinemia. Animal models lack key human organic anion transporting polypeptides with distinct epigenetic control over bilirubin metabolism, necessitating a human model to interrogate the regulatory mechanism behind UGT1A1 function. Here, we use induced pluripotent stem cells to develop human liver organoids that can emulate conjugation failu  ...[more]

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