6533b86dfe1ef96bd12ca243

RESEARCH PRODUCT

Aberrant splicing of the tumor suppressor CYLD promotes the development of chronic lymphocytic leukemia via sustained NF-κB signaling

Sabrina KlebowClaude P. MullerFrank WunderlichMichael HallekMatthias HahnThorsten BuchMona Al-maarriAri WaismanChristian P. PallaschSonja ReißigNadine HövelmeyerLuttenberger CaJean-philippe BürckertMichael HessMerly C. VogtAnke Wienecke-baldacchino

subject

0301 basic medicineCancer ResearchTumor suppressor geneCell SurvivalRNA SplicingChronic lymphocytic leukemia2720 Hematology610 Medicine & healthBiologyCD5 Antigenslaw.inventionPathogenesisMice03 medical and health sciencesimmune system diseaseslawhemic and lymphatic diseasesmedicineAnimalsHumans10239 Institute of Laboratory Animal Science1306 Cancer ResearchGenes Tumor SuppressorGeneCell ProliferationB-LymphocytesAlternative splicingNF-kappa BUbiquitinationHematologymedicine.diseaseLeukemia Lymphocytic Chronic B-CellDeubiquitinating Enzyme CYLDLeukemia030104 developmental biologyOncologyImmunologyCancer research570 Life sciences; biologySuppressor2730 OncologyCD5Signal Transduction

description

The pathogenesis of chronic lymphocytic leukemia (CLL) has been linked to constitutive NF-κB activation but the underlying mechanisms are poorly understood. Here we show that alternative splicing of the negative regulator of NF-κB and tumor suppressor gene CYLD regulates the pool of CD5+ B cells through sustained canonical NF-κB signaling. Reinforced canonical NF-κB activity leads to the development of B1 cell-associated tumor formation in aging mice by promoting survival and proliferation of CD5+ B cells, highly reminiscent of human B-CLL. We show that a substantial number of CLL patient samples express sCYLD, strongly implicating a role for it in human B-CLL. We propose that our new CLL-like mouse model represents an appropriate tool for studying ubiquitination-driven canonical NF-κB activation in CLL. Thus, inhibition of alternative splicing of this negative regulator is essential for preventing NF-κB-driven clonal CD5+ B-cell expansion and ultimately CLL-like disease.

https://doi.org/10.1038/leu.2017.168