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Biology subjects

Galan, L.

Publications and source records attributed to Galan, L..

3 recordsLinked to original sources

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↗

Failure of digit tip regeneration in the absence of suggests Lmx1b functions disparate from dorsoventral polarity

Mammalian digit tip regeneration is linked to the presence of nail tissue, but a nail-explicit model is missing. Here, we report that nail-less double-ventral digits of {Delta}LARM1/2 mutants that lack limb-specific Lmx1b enhancers fail to regenerate. To separate the nails effect from the lack of DV polarity, we also interrogate double-dorsal double-nail digits and show that they regenerate. Thus, DV polarity is not a prerequisite for regeneration and the nail requirement is supported. Transcriptomic comparison between wild-type and non-regenerative{Delta} LARM1/2 mutant blastemas reveals differential up-regulation of vascularization and connective tissue functional signatures in wild-type versus upregulation of inflammation in the mutant. These results, together with the finding of uniform Lmx1b expression in the wild-type blastema and in the dorsal dermis underneath the nail, indicate that, in addition of the nails effect, a direct role for Lmx1b in driving the progression of digit tip regeneration is likely.

developmental biology↗