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Perillous, S.

Publications and source records attributed to Perillous, S..

2 recordsLinked to original sources

The elongation of Mest transcript into MestXL sustains, but does not initiate, the maternal allele bias of its convergent gene Copg2 during neurogenesis

Precise gene dosage control is critical for establishing cellular identity and development, especially for imprinted genes, where dosage imbalances are linked to severe pathologies such as neurodevelopmental disorders. The Mest/Copg2 imprinted locus is a paradigm for this fine-tuned regulation. While Mest is constitutively expressed from the paternal allele, Copg2 expression shifts from biallelic to a maternal allele bias specifically during neural differentiation, a transition proposed to involve transcriptional interference mediated by the long Mest isoform, MestXL, which extends into the Copg2 locus. However, the mechanisms underlying this allelic switch, and whether factors beyond MestXL contribute, are elusive. To address this, we employed a stem cell-based brain organoid model, integrating multi-omic analyses, 3D chromatin structure mapping, and functional approaches to dissect the regulatory events governing the induction and maintenance of Copg2 maternal allele bias throughout neural lineage specification. Our findings challenge the prevailing model by demonstrating that the maternal allele bias of Copg2 during neural differentiation is not solely driven by MestXL-mediated transcriptional interference. Instead, our data support a temporal and neural stage-specific two-step mechanism: putative enhancer-driven activation of the maternal allele in neural progenitor cells is followed by MestXL-dependent repression of the paternal allele in neuron-enriched stages. This uncovers an unexpected layer of complexity in the regulation of imprinted gene dosage during brain development, with profound implications for understanding the molecular underpinnings of neurodevelopmental disorders.

molecular biology↗

The RNA and protein landscapes of mouse brain organoids

Organoids are powerful models of brain development and function. Mouse brain organoids reproduce the main steps of neurodevelopment in vivo and differentiate more rapidly than human organoids, making them scalable for screening applications. However, mouse brain organoids remain poorly defined. Here, we showed that the transcriptome of mouse brain organoids developed for three weeks is close to that of a neonatal mouse brain. Strikingly, organoids reproduced the majority of alternative splicing and polyadenylation site events that define a neural identity in vivo. Proteomics revealed that most changes in mRNA expression were translated into proteins. Mouse brain organoids differentiated for only three weeks already harboured a complex network of synaptic proteins, including the ionotropic and metabotropic receptors for the neurotransmitters glutamate and GABA. To conclude, our study provides compelling evidence that mouse brain organoids are a rapidly maturing and relevant model of mammalian brain development and function in a neonatal-like environment.

neuroscience↗