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Biology subjects

Goodloe, B.

Publications and source records attributed to Goodloe, B..

2 recordsLinked to original sources

Quantitative 3D imaging of mouse and human intrahepatic bile ducts in homeostasis and liver injury

Intrahepatic bile ducts (IHBDs) form a complex hierarchical network essential for liver function. Remodeling and expansion of this network during ductular reaction (DR) is a hallmark of liver disease that can be a key indicator of disease severity. Conventional histology fails to capture the full extent of IHBD structural changes following injury due to the complex 3D organization of the IHBD network which limits understanding of DR, especially in human tissue. A major barrier to leveraging 3D imaging as a diagnostic tool is the absence of standardized pipelines for IHBD imaging and analysis. Here, we establish a robust 3D IHBD imaging and analysis workflow and apply it to both mouse and human liver tissues. This pipeline enables quantification of tissue and individual duct ("segment") level features and identifies features of invasive and noninvasive DR. In mouse models, we uncover regional phenotypes, including IHBD diverticula following duct blockage and the formation of anastomosed clusters after hepatocellular injury. Finally, we apply our 3D imaging and analysis workflow to quantify IHBD networks in human liver tissue. This work deepens our understanding of IHBD architecture in homeostasis and injury and lays the groundwork for advanced phenotyping of IHBD morphologies in mice and humans with relevance to next-generation experimental and diagnostic approaches to liver disease.

pathology↗

Sox9 links biliary maturation to branching morphogenesis

Branching morphogenesis couples cellular differentiation with development of tissue architecture. Intrahepatic bile duct (IHBD) morphogenesis is initiated with biliary epithelial cell (BEC) specification and eventually forms a heterogeneous network of large ducts and small ductules. Here, we show that Sox9 is required for developmental establishment of small ductules. IHBDs emerge as a webbed structure by E15.5 and undergo morphological maturation through 2 weeks of age. Developmental knockout of Sox9 leads to decreased postnatal branching morphogenesis, manifesting as loss of ductules in adult livers. In the absence of Sox9, BECs fail to mature and exhibit elevated TGF-{beta} signaling and Activin A. Activin A induces developmental gene expression and morphological defects in BEC organoids and represses ductule formation in postnatal livers. Our data demonstrate that adult IHBD morphology and BEC maturation is regulated by the Sox9-dependent formation of precursors to ductules during development, mediated in part by downregulation of Activin A.

developmental biology↗