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Legoix, P.

Publications and source records attributed to Legoix, P..

2 recordsLinked to original sources

EZH2 mutations in follicular lymphoma distort H3K27me3 profiles and alter transcriptional responses to PRC2 inhibition

Mutations in chromatin regulators or their histone substrates are widespread in cancer and often play decisive roles in tumorigenesis. These include Polycomb Repressive Complex 2 (PRC2), a histone H3 lysine 27 methyltransferase that shows distinct alterations in each of a range of tumor types. Mechanistically, this tumor-type specificity is poorly understood. Here, we model several of these alterations in a single isogenic system in order to reveal their comparative impacts on chromatin and transcription. Focusing then on gain-of-function substitutions in catalytic subunit EZH2, which occur in [~]25% of follicular lymphomas, we show that Ezh2Y641F induces aberrant H3K27 methylation patterns even without wild-type Ezh2, and that these are alleviated by partial PRC2 inhibition. Ezh2Y641F also causes gains in existing H3K27 acetylation peaks and extensive gene expression changes. Remarkably, Ezh2Y641F transforms the transcriptomic response to PRC2 inhibition, leading notably to the induction of antigen presentation genes in mutant cells. Using a unique longitudinal cohort of FL patient samples we further strengthen the link between EZH2 mutation status and abnormal H3K27 methylation. This analysis also uncovered unexpected variability in the mutational landscape of successive biopsies from the same patient that points to the frequent co-existence of different clones. On a clinical level, this urges caution when stratifying patients based on single tumor sampling. Altogether, our results provide a mechanistic foundation for understanding how oncogenic PRC2 mutations disrupt chromatin and transcription, and the therapeutic vulnerabilities this creates.

cancer biology↗

Mechanical Stimulation Shapes the Immunoregulatory Properties of Dendritic Cells

Motile cells such as immune and cancer cells experience large deformation events that result from the physical constraints they encounter while migrating within tissues or circulating between organs. It has become increasingly clear that these cells can survive and adapt to these changes in cell shape using dedicated shape sensing pathways. However, how shape sensing impacts their function and fate remains largely unknown. Here we identify a shape sensing mechanism that couples cell motility to expression of CCR7, the chemokine receptor that guides immune cells to lymph nodes. We found that this mechanism is controlled by the lipid metabolism enzyme cPLA2, requires an intact nuclear envelop and exhibits an exquisitely sensitive activation threshold tuned by ARP2/3 and its inhibitor Arpin. We further show that shape sensing through the ARP2/3-cPLA2 axis controls Ikk{beta}-NF{kappa}B-dependent transcriptional reprogramming of dendritic cells, which instructs them to migrate to lymph nodes in an immunoregulatory state compatible with their homeostatic tolerogenic function. These results highlight that the cell shape changes experienced by motile cells evolving within the complex environment of tissues can dictate their behavior and fate.

cell biology↗