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Perron, C.

Publications and source records attributed to Perron, C..

2 recordsLinked to original sources

Cell State Chaos Underpins the Evolution of SMARCA4-Deficient Dedifferentiated Endometrial Cancer

Dedifferentiated endometrial carcinoma (DDEC) is a histologically unique cancer type, wherein well-differentiated regions lie adjacent to morphologically distinct, high-grade lesions that are histologically undifferentiated. Previous studies have determined that in nearly half of the cases dedifferentiation is associated with the genomic inactivation of SMARCA4, a catalytic subunit belonging to the SWI/SNF chromatin remodelling complex (SWI/SNF CRC), suggesting that SMARCA4 loss causes dedifferentiation. Herein, using gene editing, we reveal that when serially passaged in mice, SMARCA4-deficient endometrial cancer cells repeatably and predictably generate heterogeneous admixtures of differentiated and undifferentiated cells, resembling human DDEC. Surprisingly, despite this metamorphosis, SMARCA4 loss does not induce lineage plasticity nor reprogramming to a less differentiated fate. Rather, single-cell sequencing combined with barcoding demonstrated that SMARCA4 loss induces a dysregulated epigenome that allows cells to randomly move through cellular states that are otherwise shared with SMARCA4-expressing well-differentiated cancer cells. This finding was validated using a cohort of patient samples, such that epithelial fate markers (E-CADHERIN) can be detected in morphologically undifferentiated cells. Collectively, this work constitutes the first repeatable model of human dedifferentiated cancer and suggests that histological dedifferentiation is not due to the acquisition of a stem cell-like fate. Rather, undifferentiated tissue emerges due to epigenomic dysfunction concomitant with the arbitrary movement of cancer cells between cellular states.

cancer biology↗

Neuron secreted chemokine-like Orion is involved in the transformation of glial cells into phagocytes in different neuronal remodeling paradigms

During animal development, neurons often form exuberant or incorrect axons and dendrites at early stages, followed by the refinement of neuronal circuits at late stages. Neural circuit refinement leads to the production of large amounts of neuronal debris in the form of neuronal cell corpses, fragmented axons and dendrites, and pruned synapses requiring disposal. In particular, the predominant phagocytes acting during the neuronal remodeling and degeneration are glial cells and critical signaling pathways between neurons and glia leading to phagocytosis are required. Chemokine-like mushroom body neuron secreted Orion ligand was shown to be essential to the astrocyte infiltration into the {gamma} axon bundle leading to {gamma} axon pruning and clearance of debris left from axon fragmentation. Here we show a role of orion also in debris engulfment and phagocytosis. Interestingly, we show that orion is also involved in the overall transformation of astrocytes into phagocytes. In addition, analysis of several neuronal paradigms demonstrates the role of orion in the elimination of both peptidergic vCrz+ and PDF-Tri neurons via additional phagocytic glial cells as cortex and/or ensheathing glia. Our results suggest that Orion is essential for phagocytic activation of three different types of glial cells: astrocytes, cortex and ensheathing glia and point to Orion as a trigger not only of glial infiltration but also engulfment and phagocytosis.

neuroscience↗