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Sassolas, F.

Publications and source records attributed to Sassolas, F..

2 recordsLinked to original sources

Circadian PERIOD proteins sculpt themammalian alternative splicing landscape

Mammalian circadian oscillators are driven by a transcription-translation feedback loop where CLOCK:BMAL1 activity is repressed by the PER:CRY complex. While transcriptional regulation by PER is well established, the role of circadian feedback in co- and post- transcriptional processes remains unclear. Here, we used Nanopore long-read direct RNA sequencing (dRNAseq) and quantitative mass spectrometry (qMS) to uncover a critical function of PERs in alternative splicing (AS) regulation in the liver. Our expanded long-read transcriptome revealed significant changes in rhythmic expression of annotated transcripts, novel isoforms of known genes, and previously unannotated genes, with widespread perturbations in Per1-/-;Per2-/- (PerKO) livers. Rhythmic AS events were restricted to a distinct subset of transcripts, and splicing entropy - a metric of AS complexity - displayed oscillations in only a limited number of pathways, primarily those associated with glucose homeostasis and cellular responses to insulin. In PerKO livers, however, we detected increased isoform complexity and altered splicing entropy across a broad range of pathways linked to cell growth, morphogenesis, ER-associated degradation (ERAD), insulin response and histone methylation. Biochemical analyses and qMS data indicate that these changes are not due to mis-expression of splicing factors, but rather stem from altered nuclear abundance and chromatin retention of a few Serine-Arginine-rich splicing factors (SRSFs). In particular, SRSF3 acts proximal to the core-clock by defining both the period and amplitude of cellular rhythms. Our findings highlight a critical role for PER proteins in shaping the circadian liver proteome by integrating rhythmic transcription with the regulation of a complex and dynamic splicing landscape.

physiology↗

Decoding Nucleosome-Depleted Regions: Insights from Epigenetic Marks, Nucleosome Size, and Thermodynamic Modelling

Elucidating the global and local rules that govern genome-wide nucleosome organisation and chromatin architecture remains a critical challenge. Thermodynamic modelling based on DNA elastic properties predicts the presence of sequence-encoded nucleosome-inhibiting energy barriers (NIEBs) along vertebrate genomes. They delineate in vivo nucleosome-depleted regions (NDRs) flanked by 2-3 well positioned nucleosomes. Here, we compared mouse NIEBs to NDRs observed at CTCF binding sites and active TSSs to reveal specific chromatin organizations. We uncover in MNase-seq chromatin profiles the presence of particles of subnucleosomal length specifically positioned at the border of NIEBs with an enrichment of H3.3 and its modification H3.3 S31Ph, whereas the positioning of nucleosomes bearing H3K27ac appears insensitive to NIEBs. Surprisingly, post-translational modifications affect the size distribution of nucleosomes as seen by MNase digestion and so likely their breathing capability. We implemented an extension of our thermodynamic model allowing for variable particle size and suggest that subnucleomes at NIEB borders would result from the recruitment of chromatin remodellers at NIEBs. Our findings provide new insights into the mechanisms by which the DNA sequence and epigenetic marks shape the nucleosome positioning and breathing.

genomics↗