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Sifre, E.

Publications and source records attributed to Sifre, E..

2 recordsLinked to original sources

Cytolethal distending toxin promotes epithelial-to-mesenchymal transition by modulating AKT-Dependent β-catenin Ser552 phosphorylation

Bacterial genotoxins, Cytolethal Distending Toxin (CDT) and colibactin, cause DNA damage in intoxicated epithelial cells of the host. DNA damage influences {beta}-catenin signaling, altering its stability and nuclear translocation, potentially contributing to cancer development. Using non-transformed hepatocytes and cancer-derived intestinal and hepatic epithelial cell lines, we showed that CDT/CdtB induces the phosphorylation of {beta}-catenin at serine 552, along with the loss of {beta}-catenin from adherens junctions. This leads to the subsequent cytoplasmic accumulation and nuclear translocation of {beta}-catenin, ultimately driving TCF/LEF transcription, the crucial downstream event of Wnt/{beta}-catenin signaling, as well as the transcription of some {beta}-catenin target genes. Colibactin induces similar effects. MK-2206, a direct AKT inhibitor, and metformin, an AMP-activated protein kinase activator that indirectly inhibits AKT, both protected cells against various effects induced by CdtB exposure. These effects include {beta}-catenin phosphorylation at Ser552, the disassembly of cell-cell junctions and the subsequent nuclear accumulation of phosphorylated {beta}-catenin, leading to reduced TCF/LEF-mediated transcription. Additionally, MK-2206 and metformin protected from CdtB-induced epithelial-mesenchymal transition (EMT), including increased nuclear accumulation of SNAIL, enhanced matrix degradation and motility. Overall, these data show that infection with genotoxin-producing bacteria controls some EMT features through {beta}-catenin and AKT-dependent signaling.

cancer biology↗

The cytolethal distending toxin modulates cell differentiation and elicits epithelial to mesenchymal transition

We are frequently exposed to bacterial genotoxins, such as cytolethal distending toxin (CDT), a prevalent heterotrimeric toxin whose active moiety is its CdtB subunit. CdtB triggers potent DNA damage, predisposing factors in the development of cancers, in host cells. CDT from Helicobacter hepaticus, a mouse pathogen, was shown to be directly involved in the development of murine hepatocarcinoma. Preliminary studies have shown that CDT induces certain phenotypes reminiscent of epithelial to mesenchymal transition (EMT), a process by which cells lose their epithelial characteristics in favor of mesenchymal ones, conducive to cell motility. In the present study, we investigated the different steps of EMT using liver tissues of mice infected with H. hepaticus, as well as human epithelial cell lines and xenograft mouse models following H. hepaticus CdtB expression. Most of the different steps of the EMT process were reproduced throughout the studied models. Indeed, microarray data showed a CdtB- dependent regulation of EMT-related transcripts. The key transcriptional regulators of EMT (SNAIL1 and ZEB1) and EMT markers (Vimentin, Fibronectin and 5{beta}1 integrin) were upregulated both at RNA and protein levels in response to CdtB. It also induced cell-cell junctions disassembly, causing individualization of cells and acquisition of a spindle-like morphology. CdtB activated the expression and activity of matrix metalloproteases and increased cell motility. This study demonstrated that CDT/CdtB elicits EMT process activation, supporting the idea that infection with genotoxin-producing bacteria can promote malignant transformation. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=96 SRC="FIGDIR/small/487255v1_ufig1.gif" ALT="Figure 1"> View larger version (33K): org.highwire.dtl.DTLVardef@f94756org.highwire.dtl.DTLVardef@1ba7d59org.highwire.dtl.DTLVardef@7b80ccorg.highwire.dtl.DTLVardef@44d56d_HPS_FORMAT_FIGEXP M_FIG C_FIG Author SummaryWe are frequently exposed to infection with genotoxin--producing bacterial from the gut microbiota, such as cytolethal distending toxin (CDT). CDT, via its active CdtB subunit, causes severe DNA damage in host cells, well-known risk factor of cancer development and progression. Chronic infection with CDT-producing bacteria is thus involved in cancer development. CDT is widespread among many bacteria and its impact in human cancer seems likely underestimated. Despite its major significance, CDT remains little studied. Here, we showed that cells exposed to CdtB are no longer cohesive, become individualized and acquire a spindle-shaped morphology known to be conducive to migration. These cells also express increased level of mesenchymal markers, as well as increased level of SNAIL1 and ZEB1, two key transcription factors orchestrating a crucial mechanism for cancer initiation and progression: epithelial to mesenchymal transition. These effects induced by CdtB were associated with increased matrix metalloproteinases degrading activity and emergence of cellular motility. Collectively, these data showed that CdB activates epithelial to mesenchymal transition, supporting the role of CDT in tumorigenesis.

microbiology↗