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Bonilauri, B.

Publications and source records attributed to Bonilauri, B..

2 recordsLinked to original sources

Discovery of the TGCB microprotein translated from the lncRNA CHASERR

Long noncoding RNAs (lncRNAs) are key regulators of gene expression, and an increasing number have been found to contain small open reading frames (smORFs) that can be translated into functional microproteins. CHASERR is a conserved cis-regulatory lncRNA positioned upstream of CHD2, where it fine-tunes CHD2 dosage. Deletions spanning the CHASERR gene were recently identified in children with a syndromic, early-onset neurodevelopmental disorder, underscoring the clinical importance of this regulatory locus. Here, we report that CHASERR is not strictly noncoding but encodes a previously unannotated 41-amino-acid microprotein, which we name TGCB. Integrative analyses of bulk and single-cell transcriptomics, 47 public Ribo-seq datasets, coding-potential predictors, and multispecies alignments support active translation and evolutionary constraint of the TGCB smORF. Public mass-spectrometry data provide reproducible peptide-spectrum matches corresponding to its N-terminal region, and immunofluorescence confirms nuclear and cytoplasmic localization. Structural prediction reveals a compact -helical microdomain flanked by intrinsically disordered regions, characteristic of regulatory microproteins. Notably, all pathogenic deletions affecting the CHASERR-CHD2 region remove the entire TGCB coding sequence, raising the possibility that loss of this microprotein contributes to the associated neurodevelopmental phenotypes. These findings position CHASERR as a bifunctional transcript and uncover a conserved microprotein embedded within a clinically relevant regulatory locus.

molecular biology↗

The Long Non-coding RNA Landscape of Endurance Exercise Training

Long non-coding RNAs (lncRNAs) regulate multiple cellular processes. However, knowledge of the responses and regulatory functions of lncRNAs in physical exercise and training remains limited. As part of the Molecular Transducers of Physical Activity Consortium (MoTrPAC), we conducted a comprehensive analysis of lncRNA expression patterns in 18 tissues after an 8-week progressive endurance training program in rats. The lncRNA expression pattern was largely tissue-specific. In total, 759 unique lncRNAs were found to be differentially expressed across all tissues, generally displaying lower abundance, shorter transcript length, and reduced GC content compared with protein-coding genes. The most pronounced changes were observed in white and brown adipose tissues, the hypothalamus, and the adrenal gland. In the two skeletal muscle tissues investigated, only two lncRNAs were commonly differentially expressed. White and brown adipose tissues revealed a correlation between upregulated differentially expressed lncRNAs and coding genes associated with immune regulation. We identified substantial sex differences in the lncRNA regulatory landscape in response to exercise training. This comprehensive tissue-specific characterization of exercise-responsive lncRNAs opens new avenues for understanding exercise as molecular medicine and may inform the development of lncRNA-targeted therapeutics that harness the beneficial effects of exercise.

physiology↗