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Gerbal-Chaloin, S.

Publications and source records attributed to Gerbal-Chaloin, S..

3 recordsLinked to original sources

The histone variant H2A.Z and its chaperone SRCAP are required for RNA polymerase II to access HBV chromatin

BackgroundChronic hepatitis B virus (HBV) infection remains a major global health burden due to the persistence of covalently closed circular DNA (cccDNA), a stable episomal viral reservoir resistant to current antiviral therapies. The transcriptional activity of cccDNA depends on its chromatin organization, yet the contribution of histone variants to this regulation remains poorly understood. MethodsUsing mass spectrometry-based proteomics on native cccDNA purified from infected primary human hepatocytes, we identified the histone variant H2A.Z and its chaperone SRCAP as cccDNA-associated proteins. Functional analyses combining shRNA-mediated silencing, chromatin immunoprecipitation (ChIP), and ATAC-seq were performed in HBV-infected HepG2-NTCP cells and primary human hepatocytes to characterize their roles in cccDNA formation and transcription. ResultsDepletion of H2A.Z.1, H2A.Z.2, or SRCAP reduced both HBV RNA levels and cccDNA formation. H2A.Z recruitment to cccDNA correlated with the establishment of active chromatin marks (H3K4me3) and enhanced RNA polymerase II loading, promoting an open and transcriptionally active chromatin state. In addition, we identified BRD2, an H2A.Z-associated transcriptional co-activator, as a positive regulator of HBV transcription. shRNA mediated depletion and pharmacological degradation of BRD2 using the PROTAC ARV-771 reduced HBV RNA levels, supporting its potential as an antiviral target. ConclusionOur findings uncover a critical role of the H2A.Z variant and SRCAP complex in cccDNA formation and transcriptional activation. By facilitating chromatin accessibility and RNA polymerase II recruitment, H2A.Z establishes an epigenetic environment favorable to HBV persistence. Targeting H2A.Z-associated co-activators such as BRD2 may represent a promising strategy to silence cccDNA transcription and achieve functional HBV cure.

microbiology↗

Metabolic rewiring of cancer cells induces metastasis via ERK5 but triggers recognition by NK cells

Metastasis is largely controlled by Natural Killer (NK) cell-mediated immune surveillance. To colonize new environments, cancer cells undergo epithelial to mesenchymal transition (EMT), which allows them to detach and migrate. EMT is fueled by fatty acid oxidation (FAO), which partially replaces glycolytic-based tumor metabolism. Whether metabolic rewiring affects the targeting of cancer cells by NK cells remains unknown. Here, we show that forcing solid cancer cells to perform FAO by inhibiting pyruvate dehydrogenase kinase 1 with dichloroacetate (DCA) activates extracellular signal-regulated kinase-5 (ERK5), triggering EMT and tumor cell migration and invasion. Concomitantly, FAO induces the expression of ligands that mediate NK cell recognition. Consequently, NK cells better infiltrated DCA-treated 3D tumor spheroids, where they exerted their cytotoxic effects. DCA-treated cells showed increased migration in a zebrafish model, whereas metastasis from mammary cancer cells grafted into immune-deficient mice was enhanced by DCA. These migrating/metastatic cells are preferentially killed by NK cells, which strongly limit their invasive potential. Hence, FAO promotes both metastasis and NK-mediated tumor surveillance, highlighting the Achilles heel of metastatic cells, which may offer new therapeutic opportunities. TeaserMetastasis recognition and killing by immune cells, such as NK cells, requires a metabolic shift that relies on lipid metabolism.

cancer biology↗

Targeting Pregnane X Receptor with a Potent Agonist-Based PROTAC to Delay Colon Cancer Relapse

Tumor recurrence is often attributed to drug-tolerant cancer stem cells. We previously demonstrated that down regulation of the Pregnane X Receptor (PXR, NR1I2) decreases chemoresistance of cancer stem cells and prevents colorectal cancer recurrence in xenograft mouse models. These is a lack of PXR antagonists that are appropriate for clinical use. In this study, we report the design and synthesis of a novel PXR agonist-based PROTAC (JMV7048) that induces polyubiquitination and degradation of human PXR protein in an E3 CRBN ubiquitin ligase- and the 26S proteasome-dependent manner. This molecule specifically degrades PXR in colon carcinoma, hepatoma, and pancreatic cancer cell lines, but not in primary cultures of human hepatocytes. Crucially, JMV7048 decreased PXR protein expression in colon cancer stem cells and sensitized them to chemotherapy significantly delaying cancer relapse in vivo. PROTACs targeting PXR protein could thus become novel therapeutic agents to enhance cancer cell sensitivity to chemotherapy.

cancer biology↗