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Nicholson, J. G.

Publications and source records attributed to Nicholson, J. G..

3 recordsLinked to original sources

Disruption of the Wnt-antagonist Apc in the pituitary stem cells drives the development of adamantinomatous craniopharyngioma.

Adamantinomatous craniopharyngiomas (aCPs) are complex intracranial neoplasms that generally arise in the sellar and suprasellar region of the brain which affect the endocrine and nervous systems causing severe sequelae. Activating mutations resulting in degradation-resistant forms of {beta}-catenin (CTNNB1) have been shown to be the main driver for many of these neoplasms. However, the underlying genetic driver for a proportion of these tumours is still unknown. Using murine transgenic models, we show that genetic disruption of the Wnt-antagonist and tumour suppressor, adenomatous polyposis coli (Apc), within the pituitary progenitors/stem cells, leads to pituitary tumours that closely resemble human aCPs. These tumours present classic histopathological hallmarks of aCPs, such as large deposits of wet keratin, stellar-reticular-like cells, large cystic components and clusters of accumulating nucleo-cytoplasmic {beta}-catenin that are slow-dividing and exhibit a secretory phenotype. We show that a hypomorphic allele of Apc is sufficient for tumour development, indicating that disruption of Apc function can lead to aCP formation. Moreover, we identify that bi-allelic loss of Apc in the Sox2+ve pituitary stem cells is sufficient to initiate tumour formation, indicating that Sox2+ve stem cells are the cell origin of these Apc-driven aCPs. Transcriptomic analyses of early tumour-initiating cells revealed that Apc-driven clusters of accumulating {beta}-catenin undergo senescence-associated secretory phenotype (SASP), which is p21-mediated and results in secretion of inflammasome, angiosome and developmental growth factors. Our data unequivocally show a causal role for the disruption of the tumour suppressor Apc as a primary driver of aCPs independent of mutations in {beta}-catenin. We provide murine models representing a novel genetic subtype of human aCPs offering insights into aCP pathogenesis. Our work reinforces the importance of genetic testing for mutations in APC in patients with aCPs and identifies a potential need to screen patients with familial adenomatous polyposis (FAP) or spectrum of APC-pathogenic syndromes for aCPs in early life.

cancer biology↗

Targeting Glioblastoma Cell State Plasticity for Enhanced Therapeutic Efficacy

Glioblastoma (GBM) is the most common and deadly primary brain cancer, with limited therapeutic options. Treatment failure has been associated with intratumoral heterogeneity and the acquisition of a pronounced mesenchymal-like (MES-L) phenotype after recurrence. Here, we have screened a panel of drugs with diverse mechanisms of action across two patient-derived glioblastoma stem cells (GSCs) to characterize the dynamics of drug-mediated transcriptomic cellular state changes. Our results demonstrate that anti-tumor drugs induce significant but reversible alterations in cellular state distribution at the single-cell level in a drug-specific manner, influencing transitions between mesenchymal and the neurodevelopmental astrocytic-like (AC-L) states. Utilizing barcoded analysis in our recently developed ex vivo glioblastoma cerebral organoid (GLICO) model, we discerned distinct cell state sensitivities to the MES-L enhancing histone deacetylase inhibitor, panobinostat, which are contingent on the inducible modulation of the mesenchymal transcription factor FOSL1. The strategic combination of MES-L enhancing and MES-l suppressing genetic perturbations or drugs significantly increases anti-glioma activity in a strategy we call state-selective lethality. Overall, our findings highlight the critical role of cell state plasticity in the response of GSCs to anti-tumor therapeutic stress and underscore the potential for novel GBM combination drug strategies.

cancer biology↗

Modelling medulloblastoma pathogenesis and treatment in human cerebellar organoids.

Faithful genetically engineered in vivo models of medulloblastoma (MB) are currently available only for some molecular subgroups, in keeping with recent studies showing the unique role of human-specific progenitors in the development of G3 and G4 MB subgroups. We generated human cerebellar organoids (CbO) from expanded potential stem cells (EPSC) and characterised their epigenetic and transcriptomic profile compared to the developing human cerebellum. We show the presence of sub compartment-specific cerebellar lineages linked to MB formation, including populations expressing signature genes of putative G3 and G4 MB cells-of-origin. We show that these lineages can be genetically engineered to model MB tumour onset. Moreover, we demonstrate that CbO sustain proliferation and invasion of G3/4 MB cells in a 3D co-culture model (CbO-MB) while preserving their molecular identity, and that treatment of CbO-MB with anti-tumour compounds recapitulate the efficacy of in vivo drug testing in xenograft models.

cancer biology↗