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Bertran, j.

Publications and source records attributed to Bertran, j..

4 recordsLinked to original sources

Diverse transcriptomic and mutational patterns but limited functional pathway alterations in patient-derived SS cells

Structured AbstractO_ST_ABSBackgroundC_ST_ABSEradication of SS is hampered by its genetic and molecular heterogeneity. A better understanding of the putative commonalities underlying SS oncogenicity may help to provide more efficient therapeutic strategies against this devastating disease. PurposeThe present work analyzes the whole transcriptome of different patient-derived SS cells to identify expression patterns, functional programs and expressed gene mutations that may provide clues on new therapeutic options for SS patients MethodsMononuclear cells were recovered by Ficoll gradient separation from fresh peripheral blood of SS patients (n=7). Selected pathway-based compounds and the MALT1 inhibitor MI2 were used for in vitro drug sensitivity testing. SS cells viability was evaluated using CellTiter-Glo_3D Cell Viability Assay and flow cytometry analysis. We validated the usefulness of MI2 using patient-derived SS cells xenotransplanted (PDX) into Nod Scid Gamma mice. ResultsIn vitro data indicated that cell lines and primary malignant SS cells all display different sensitivities against specific pathway inhibitors. However, MALT1 inhibition led to a robust effect in vitro that was partially reproduced in the in vivo NSG mice xenograft model. ConclusionOur investigations revealed the actual possibility of inhibiting the downstream TCR signaling complex form by CARD11, BCL10 and MALT1 in SS therapy. Key PointsPatient-derived SS cells are transcriptionally and mutationally heterogeneous but share some common pathway alterations. Inhibition of MALT1 reduces NF-{kappa}B signaling and cell growth in cell lines and patient-derived SS cells.

cancer biology↗

Epigenetic modifications driving ground state pluripotency exit require an NF-κB-independent chromatin IκBα function

Maintenance of pluripotency is a multifactorial process in which NF-{kappa}B is a negative regulator. Our previous work identified a chromatin role for I{kappa}B, the master regulator of NF-{kappa}B signaling, that is critical for the proper regulation of various tissue stem cells. Here, we found that I{kappa}B accumulates specifically in the chromatin fraction of pluripotent embryonic stem cells. I{kappa}B depletion does not affect NF-kB-dependent transcription, but causes a profound epigenetic rewiring in pluripotent stem cells, including alterations in H3K27me3, a histone mark catalyzed by Polycomb repression complex 2. Chromatin changes induced by I{kappa}B depletion affect a subset of pluripotency genes and are associated with altered gene transcription. At the cellular level, I{kappa}B-deficient embryonic stem cells are arrested in a naive pluripotency state when cultured in serum/LIF conditions and fail to exit pluripotency under differentiation conditions. By constructing separation-of-function mutants, we show that the effects of I{kappa}B in regulating stem cell pluripotency are NF-{kappa}B-independent, but mainly rely on its chromatin-related function. Taken together, our results reveal a novel mechanism by which I{kappa}B participates in the regulation of the pluripotent state of embryonic stem cells and shed light on the interplay between inflammatory signals and the regulation of pluripotency.

cell biology↗

Separation-of-function mutants reveal the NF-κB-independent involvement of IκBα in the regulation of stem cell and oncogenic programs

We previously demonstrated that the NF-{kappa}B inhibitor I{kappa}B binds the chromatin together with PRC2 to regulate a subset of developmental- and stem cell-related genes. This alternative function has been elusive in both physiological and disease conditions because of the predominant role of I{kappa}B as a negative regulator of NF-{kappa}B. We here uniquely characterize specific residues of I{kappa}B that allow the generation of separation-of-function (SOF) mutants that are defective for either NF-{kappa}B-related (SOF{Delta}NF-{kappa}B) or chromatin-related (SOF{Delta}H2A,H4) activities. Expression of I{kappa}B SOF{Delta}NF-{kappa}B, but not SOF{Delta}H2A/H4, is sufficient to negatively regulate a specific stemness program in intestinal cells, thus rescuing the differentiation blockage imposed by I{kappa}B deficiency. In contrast, full I{kappa}B activity is required for regulating clonogenic/tumor-initiating activity of colorectal cancer cells. Our data indicate that SOF mutants represent an exclusive tool for studying I{kappa}B functions in physiology and disease, and identified I{kappa}B as a robust prognosis biomarker for human cancer.

cell biology↗

IKK1 kinase coordinates BRD4 and JAK/STAT signaling to subvert DNA damage-based anticancer therapy

Activation of the IKK kinase complex has recurrently been linked to colorectal cancer (CRC) initiation and progression. However, identification of downstream effectors other than NF-{kappa}B has remained elusive. Analysis of IKK-dependent substrates after UV-treatment revealed that BRD4 phosphorylation by IKK is required for chromatin-binding dynamics upon damage. Moreover, IKK induces the NF-{kappa}B-dependent transcription of LIF leading to STAT3 activation, association of BRD4 to STAT3 and recruitment to specific target genes. IKK abrogation results in defective BRD4 and STAT3 function leading to irreparable DNA damage and apoptotic cell death upon different stimuli. Simultaneous inhibition of BRAF-dependent IKK activity or BRD4 and the JAK/STAT pathway enhanced the therapeutic potential of 5-FU plus irinotecan in CRC cells, and is curative in a chemotherapy-resistant CRC xenograft model. Coordinated expression of LIF and IKK is a poor prognosis marker for CRC patients. Our data uncover a functional link between IKK, BRD4 and JAK/STAT signaling with clinical relevance.

cancer biology↗