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Biology subjects

Ascolani, M.

Publications and source records attributed to Ascolani, M..

3 recordsLinked to original sources

LBR nucleoplasmic domains regulate X-chromosome solubility and nuclear organization

The nuclear lamina plays a central role in genome organization, yet how specific lamina-associated proteins regulate chromosome architecture during development remains unclear. Here, we show that the nucleoplasmic domains of the Lamin B Receptor (LBR) are essential for X-chromosome localization at the nuclear periphery and chromatin architecture during neural differentiation. Using genetic dissection of LBR function, combined with genome-wide chromatin solubility profiling and transcriptional analyses, we demonstrate that loss of LBR N-terminal domains impairs proper cell differentiation and X chromosome inactivation (XCI), selectively disrupting chromatin structure in neural progenitors but not in pluripotent cells. Strikingly, these effects are disproportionately concentrated - but not limited to - on the inactive X chromosome, which undergoes a pronounced shift toward a more soluble chromatin state. Our findings establish the nucleoplasmic function of LBR as a key determinant of X-chromosome functionality and identify chromatin solubility and accessibility as a previously underappreciated layer of genome regulation by the nuclear lamina in XCI. Finally, our work provides definitive genetic evidence that LBRs nuclear architectural functions are molecularly separable from its metabolic sterol reductase activity, which is preserved in our model, and are critically necessary for XCI in differentiating mouse female XX ESCs models.

genetics↗

The transcription of a single olfactory receptor per neuron is enforced by epigenetic silencing of their enhancers

The ability to discriminate thousands of odors in our environment requires each olfactory neuron to express a single olfactory receptor from hundreds of available genes. The biochemical mechanism enforcing this monogenic expression remains unknown. We show that deletion of the chromatin protein TRIM66 causes individual olfactory neurons to express multiple receptors at a high level, demonstrating that monogenic expression relies on an epigenetic silencing mechanism. Moreover, TRIM66 is specifically recruited to olfactory receptor gene super-enhancers during neuronal progenitor maturation, thereby silencing nearby olfactory receptor genes. Loss of monogenic expression disrupted axonal projections to the olfactory bulb, resulting in an aberrant topographic map and impaired social odor discrimination and reproductive behaviors. These findings uncover the chromatin-based silencing of super-enhancers as the mechanism underlying the organization of the mammalian olfactory system.

molecular biology↗

Genetic gradual reduction of OGT activity unveils the essential role of O-GlcNAc in the mouse embryo

The reversible glycosylation of nuclear and cytoplasmic proteins (O-GlcNAcylation) is catalyzed by a single enzyme, namely O-GlcNAc transferase (OGT). The mammalian Ogt gene is X-linked and it is essential for embryonic development and for the viability of proliferating cells. We perturbed OGTs function in vivo by creating a murine allelic series of four single amino acid substitutions reducing OGTs catalytic activity to a range of degrees. The severity of the embryonic lethality was proportional to the degree of impairment of OGTs catalysis, demonstrating that the O-GlcNAc modification itself is required for early development. We identified milder hypomorphic Ogt alleles that perturb O-GlcNAc homeostasis while being compatible with embryogenesis. The analysis of the transcriptomes of the mutant embryos at different stages suggested a sexually-dimorphic developmental delay caused by the decrease in O-GlcNAc. Furthermore, a mild reduction of OGTs enzymatic activity was sufficient to loosen the silencing of endogenous retroviruses in vivo.

developmental biology↗