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Ruidiaz, S. F.

Publications and source records attributed to Ruidiaz, S. F..

2 recordsLinked to original sources

PolyA/polyQ-mediated conformational rewiring regulates DNA engagement and drives aggregation in the neuronal transcription factor Ascl1

Ascl1 is a pioneer transcription factor that drives neuronal fate decisions, yet the structural basis of its activity remains elusive. Besides the basic helix-loop-helix (bHLH) domain which dimerizes with other transcription factors and binds DNA, Ascl1 contains long low-complexity intrinsically disordered regions (IDRs), including a polyA/polyQ tract of unknown function. Here we use single-molecule FRET to map the conformational ensemble of full-length Ascl1 across monomeric, heterodimeric, and DNA-bound states. Monomeric Ascl1 is largely disordered but displays multivalent coupling between the N-terminal IDR and the bHLH domain, with the polyA/polyQ tract opposing bHLH compaction. E12 binding folds the bHLH domain and remodels the N-IDR, increasing dynamics across the N-IDR while suppressing them locally within the polyA/polyQ tract. Deleting the tract weakens nonspecific DNA binding by the Ascl1/E12 heterodimer without disrupting heterodimerization or high-affinity E-box binding, abolishes aggregation in vitro, and increases Ascl1 abundance in HEK293T cells. Thus, the polyA/polyQ tract acts as a regulatory module that promotes nonspecific DNA engagement while imposing a cost in solubility and cellular abundance.

biophysics↗

SCAF1 driven polyadenylation site usage regulates mRNA isoform expression and neuronal differentiation

Accurate co-transcriptional processing is required for correct gene expression of mRNA transcript isoforms under unperturbed conditions, but particularly during development, to ensure tissue-specific mRNA isoform expression. Here we show that the poorly studied SR-related CTD-associated factors SCAF1 protein regulates polyadenylation site usage towards the end of genes. SCAF1 interacts directly with the phosphorylated C-terminal domain (CTD) of RNA polymerase II (RNAPII), in a complex enriched with elongation and 3 end processing factors. While SCAF1 knockout in HEK293 cells is innocuous, it leads to a shift towards expression of shorter mRNA transcripts by co-transcriptional usage of early polyadenylation sites. SCAF1 deficiency induced via auxin-dependent degradation in neuron differentiating mouse embryonic stem cells (mESCs) results in neuronal commitment defects, mediated by altered mRNA isoform usage that impacts expression of key neuronal genes. These findings highlight the importance of mRNA isoform usage and underscores the key role for SCAF proteins in its regulation though polyadenylation site selection.

molecular biology↗