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Voisin, L.

Publications and source records attributed to Voisin, L..

2 recordsLinked to original sources

Redundant roles of YES and SRC tyrosine kinases in driving malignant peripheral nerve sheath tumors

Malignant peripheral nerve sheath tumors (MPNST) are highly aggressive soft tissue sarcomas that are largely incurable with no clinically effective systemic therapies or immunotherapies for advanced disease. Here, we identify the SRC-family kinases (SFKs) YES and SRC as redundant, essential drivers of MPNST growth. Dual inhibition of YES/SRC activity by genetic silencing or pharmacological SFK inhibitors markedly suppressed the proliferation of multiple NF1-mutant MPNST cell lines. In vivo, conditional genetic depletion of YES/SRC in MPNST cells abrogated tumor growth in subcutaneous and orthotopic models, and dasatinib treatment delayed tumor progression and improved overall survival. Integrated transcriptomic and phosphotyrosine proteomic analyses revealed that YES/SRC inactivation extensively rewires MPNST signaling, coordinately repressing multiple oncogenic signaling pathways and downstream cell cycle transcriptional programs. Unexpectedly, YES/SRC inhibition also upregulated interferon and antigen processing and presentation pathways and increased cell-surface MHC class I expression, consistent with tumor-intrinsic immune reactivation. Clinically, analysis of a large sarcoma cohort demonstrated that YES1 is significantly overexpressed in MPNST compared to benign soft tissue tumors. Collectively, our findings establish YES/SRC as non-oncogene vulnerabilities in MPNST.

cancer biology↗

H4K20me3 and CTCF act reciprocally at TAD boundaries to regulate cell state transitions

Reversible transitions between proliferative and quiescent cell states involve widespread gene expression changes despite stable topologically associating domain (TAD) boundaries. We report a reciprocal antagonism between TAD boundary element CTCF and histone modification H4K20me3 as a central mechanism governing the proliferation-quiescence transition. Genome-wide studies and functional perturbations reveal that elevated H4K20me3 in quiescent fibroblasts displaces CTCF at specific TAD boundaries while CTCF binding predominates in proliferating cells. Increased H4K20me3 reversibly induces a compact chromatin state, elliptical nuclear morphology, and transcriptional programs associated with quiescence. Conversely, elevated CTCF binding drives open chromatin, proliferative gene expression, and cell division despite quiescence signals. Fibroblasts lacking H4K20me3 methyltransferase KMT5C/Suv4-20h2 are hyper-proliferative and KMT5C-deficient mice are larger. Our findings provide a mechanistic framework for how architectural and epigenetic regulators exchange at TAD boundaries to coordinate reversible cell state transitions, a finding with implications for organismal development and diseases of dysregulated proliferation.

cell biology↗