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Ciers, M.

Publications and source records attributed to Ciers, M..

2 recordsLinked to original sources

Canonical Wnt induction by OTULIN prevents keratinocyte death and skin inflammation

Loss-of-function mutations in the human OTULIN gene, encoding a deubiquitinase with exclusive specificity for linear ubiquitin chains, cause a severe multi-organ autoinflammatory condition involving the skin1,2. Mice lacking OTULIN selectively in keratinocytes develop inflamed skin lesions that progress into squamous tumours, a phenotype driven by excessive TNF-induced cell death3,4. Previous studies suggested a role for OTULIN in mediating Wnt signalling during development5, but the physiological relevance of this association is unknown. Here, we show that OTULIN promotes Wnt signalling in keratinocytes by regulating the linear ubiquitination status of {beta}-catenin. Stabilisation of {beta}-catenin in OTULIN-deficient keratinocytes prevents progressive skin inflammation in prophylactic and therapeutic settings by blocking keratinocyte death. We demonstrate that linearly ubiquitinated {beta}-catenin accumulates in OTULIN-deficient keratinocytes, promoting its ubiquitination with K48 chains and subsequent proteasomal degradation. Reduced Wnt signalling in OTULIN-deficient keratinocytes leads to degradation of TCF3, an essential survival factor for keratinocytes6. Collectively, our data identify OTULINs linear deubiquitination activity as a key regulator of epithelial cell viability, not only by preventing cell death downstream of TNF, but also by promoting canonical Wnt signalling.

cell biology↗

Colibactin-induced genotoxicity and colorectal cancer exacerbation critically depends on adhesin-mediated epithelial binding

Various bacteria are suggested to contribute to colorectal cancer (CRC) development, including pks+ E. coli which produce the genotoxin colibactin that induces characteristic mutational signatures in host epithelial cells. It remains unclear how the highly unstable colibactin molecule is able to access host epithelial cells and its DNA to cause harm. Using the microbiota-dependent ZEB2-transgenic mouse model of invasive CRC, we found that pks+ E. coli drives CRC exacerbation and tissue invasion in a colibactin-dependent manner. Using isogenic mutant strains, we further demonstrate that CRC exacerbation critically depends on expression of the E. coli type-1 pilus adhesin FimH and the F9-pilus adhesin FmlH. Blocking bacterial adhesion using a pharmacological FimH inhibitor attenuates colibactin-mediated genotoxicity and CRC exacerbation. Together, we show that the oncogenic potential of pks+ E. coli critically depends on bacterial adhesion to host epithelial cells and is critically mediated by specific bacterial adhesins. Adhesin-mediated epithelial binding subsequently allows production of the genotoxin colibactin in close proximity to host epithelial cells, which promotes DNA damage and drives CRC development. These findings present promising therapeutic avenues for the development of anti-adhesive therapies aiming at mitigating colibactin-induced DNA damage and inhibiting the initiation and progression of CRC, particularly in individuals at risk for developing CRC.

cancer biology↗