Tissue scarring provides a biomechanical framework to promote mammalian bile duct regeneration through the activation of integrin-SRC/FAK signalling.
Walker, A.; Olaizola, P.; Brennan, E.; Jarman, E. J.; Yao, Y.; Carmichael, E.; Gradinaru, A.; Loftus, A. E. P.; Wilson, D. H.; Martinez Lyons, A.; Charlton, L.; Ober-Vliegen, K.; Mi, W.; Broeders, A.; Davies, K.; Carragher, N.; Unciti-Broceta, A.; Kendall, T. J.; J.W. van der Laan, L.; Verstegen, M.; Frame, M. C.; Waddell, S. H.; Boulter, L.
Show abstract
Following chronic injury, the adult mammalian bile duct regenerates by forming new branches, essentially replumbing the ductular system to overcome blockages and breaks. To regenerate effectively, biliary epithelial cells (BECs) receive a range of pro-mitogenic signals from myofibroblasts, which concurrently deposit a collagen-rich scar around the duct as it regrows. Despite epithelial regeneration and scarring occurring side-by-side, whether the deposition of scar tissue regulates ductular regeneration per se remains unclear. By inducing ductular fibrosis and regeneration in vivo, we show that the formation of collagen-I-rich scars around regenerating ducts changes the local biomechanical properties of these tissues, promoting the growth of ducts. Critically, this changing structural landscape is perceived by a spatially restricted population of biliary epithelial cells which forms a "leading-tip" of integrin-2-high cells. This leading-tip undergoes partial-EMT-type reprogramming, allowing it to become migratory and coordinate ductular regeneration. We show that this process is directly driven through an integrin-2-SRC/FAK signalling axis; thereby connecting epithelial regeneration directly to the changing fibrotic environment in chronic ductular disease. HighlightsO_LIChronic liver disease results in the formation of stiff, collagen scars around ducts. C_LIO_LINew ducts acquire high levels of integrin-2 which is spatially localised to a "leading-tip", which loses epithelial features. C_LIO_LIIntegrin-2{beta}1-SRC/FAK signalling regulates ductular migration by linking changes in the bio-structural composition of the liver with ductular cells. C_LI
Matching journals
The top 6 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Single-cell transcriptomics reveals a conserved metaplasia program in pancreatic injury 95%
- Tofacitinib uptake by patient-derived intestinal organoids predicts individual clinical responsiveness 93%
- Interleukin-21 Drives a Hypermetabolic State and CD4+ T Cell-associated Pathogenicity in Chronic Intestinal Inflammation 93%
Similar papers in this journal
Similar papers in this journal
- Compensatory hepatic adaptation accompanies permanent absence of intrahepatic biliary network due to YAP1 loss in liver progenitors 96%
- Regulatory T cell stability determines the efficiency of bile duct regeneration during cholangitis. 96%
- Apical restriction of the planar cell polarity component VANGL in pancreatic ducts is required to maintain epithelial integrity 94%
Similar papers in this journal
- Fast and efficient generation of knock-in human organoids using homology-independent CRISPR/Cas9 precision genome editing 94%
- Single-cell atlas of human liver development reveals pathways directing hepatic cell fates 93%
- Mechanical compartmentalization of the intestinal organoid enables crypt folding and collective cell migration 93%
Similar papers in this journal
- Identification of CD133+ Intercellsomes in Intercellular Communication to Offset Intracellular Signal Deficit 96%
- DoUble resin Casting micro computed Tomography (DUCT) reveals biliary and vascular pathology in a mouse model of Alagille syndrome 95%
- Elys deficiency constrains Kras-driven tumour burden by amplifying oncogenic stress 94%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.