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Drabent, P.

Publications and source records attributed to Drabent, P..

2 recordsLinked to original sources

Human liver organoids uncover ductular reaction in Wolman disease and inform gene therapy design

Wolman disease (WD), the severe infantile form of lysosomal acid lipase deficiency, is a rare metabolic disorder caused by inactivating mutations in the LIPA gene. Although WD is characterized by profound hepatic dysfunction, experimental human systems capable of modelling multicellular liver pathology and supporting therapeutic testing remain limited. Here, we generated an isogenic human model of WD by introducing LIPA loss-of-function mutations into induced pluripotent stem cells and differentiating them into multicellular human liver organoids (HLO). LIPA-deficient HLO preserved hepatic lineage specification while recapitulating key biochemical and cellular features of WD, including loss of LIPA activity, lysosomal expansion, lipid accumulation, and activation of inflammatory and fibrogenic programs. Single-cell RNA sequencing resolved cell-type-specific disease states across hepatocyte-, stromal-, and biliary-like populations, revealing the emergence of a reactive biliary program consistent with ductular reaction, a complex tissue response associated with chronic liver injury. Importantly, this reactive biliary phenotype was supported by targeted gene-expression analysis in WD liver organoids and independently validated in liver tissue from mouse models and WD patients. Isolated LIPA-deficient cholangiocyte organoids failed to reproduce the DR-associated program, indicating that this response depends on multicellular interactions within the hepatic microenvironment rather than on biliary cell-autonomous dysfunction alone. Consistently, hepatocyte-directed AAV-mediated restoration of LIPA expression attenuated metabolic stress, inflammatory and fibrogenic programs, and suppressed ductular reaction both in organoids and in vivo. Together, these findings establish multicellular human liver organoids as a physiologically relevant platform for modelling emergent tissue-level responses in WD and for evaluating therapeutic rescue strategies in a human context.

pathology↗

AXL mediates mast cell survival and resistance to tyrosine kinase inhibitors in mastocytosis

Mastocytosis is a clonal disorder driven by KIT mutations, but resistance to tyrosine kinase inhibitors (TKIs) remains a major challenge. Following the discovery of an AXL L197M mutation in a patient with congenital aggressive mastocytosis, we demonstrated unexpected wild-type AXL expression in neoplastic mast cells (MCs) across mastocytosis subtypes, challenging current views concerning mastocytosis pathophysiology. AXL was undetectable in steady-state MCs but several factors, including IFN- and IFN-{beta}, induced its expression, consistent with the inflammatory nature of mastocytosis and the high interferon levels in patient plasma. Ectopic expression of WT or L197M AXL in the ROSA KIT D816V cell line enhanced proliferation and survival by upregulating pSTAT5, pSTAT3, pFAK, p-p38, survivin and BCL2. Both AXL forms conferred resistance to the KIT inhibitor PKC412/midostaurin by sustaining BCL2, MCL1, and BCL-XL expression while reducing caspase-3 activation. L197M AXL induced slightly stronger resistance to apoptosis than WT, but this difference was not significant. Combined KIT and AXL targeting (PKC412+R428) restored TKI sensitivity by downregulating BCL-XL, Livin and cIAP1, and activating caspase-3, highlighting the therapeutic potential of dual KIT/AXL pathway inhibition. Importantly, neoplastic MCs from a mast cell leukemia patient harboring the KIT F522C mutation and unresponsive to PKC412 strongly expressed AXL and displayed marked in vitro sensitivity to R428 alone, highlighting AXL as a potential therapeutic target in aggressive mastocytosis not driven by KIT D816V. These findings identify AXL as a previously unrecognized driver of malignant MC survival and TKI resistance, and support AXL inhibition as a promising therapeutic strategy in aggressive mastocytosis. Key Points- AXL is aberrantly expressed in neoplastic mast cells, driving survival and resistance to KIT inhibition in mastocytosis. - Dual KIT and AXL inhibition restores TKI sensitivity in KIT-mutant mastocytosis. Graphical abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=182 SRC="FIGDIR/small/686205v1_ufig1.gif" ALT="Figure 1"> View larger version (40K): org.highwire.dtl.DTLVardef@1569c9eorg.highwire.dtl.DTLVardef@1445b32org.highwire.dtl.DTLVardef@bf3565org.highwire.dtl.DTLVardef@14a94f0_HPS_FORMAT_FIGEXP M_FIG C_FIG

cancer biology↗