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Jarvelin, A. I.

Publications and source records attributed to Jarvelin, A. I..

2 recordsLinked to original sources

Understanding RNP remodelling uncovers RBPs functionally required for viral replication

The compendium of RNA-binding proteins (RBPome) has been greatly expanded by the development of RNA-interactome capture (RNA-IC). However, it remains unknown how responsive is the RBPome and whether these responses are biologically relevant. To answer these questions, we created comparative RNA-IC to analyse cells challenged with an RNA virus, called sindbis (SINV). Strikingly, the virus altered the activity of 245 RBPs, many of which were newly discovered by RNA-IC. Mechanistically, alterations in RNA binding upon SINV infection are caused by changes in the subcellular localisation of RBPs and RNA availability. Moreover, RBPome responses are crucial, as perturbation of dynamic RBPs modulates the capacity of the virus to infect the cell. For example, ablation of XRN1 causes cells to be refractory to infection, while GEMIN5 moonlights as a novel antiviral factor. Therefore, RBPome remodelling provides a mechanism by which cells can extensively rewire gene expression in response to physiological cues.\n\nHIGHLIGHTSO_LIA quarter of the RBPome remodels upon SINV infection.\nC_LIO_LIThe remodelling is caused by changes in protein localisation and RNA availability.\nC_LIO_LIRewiring of the RBPome is crucial for viral infection efficacy.\nC_LIO_LIWe discover RBPs with previously unknown anti- or pro-viral activity.\nC_LI

molecular biology

Regulating prospero mRNA Stability Determines When Neural Stem Cells Stop Dividing

During Drosophila and vertebrate brain development, the conserved transcription factor Prospero/Prox1 is an important regulator of the transition between proliferation and differentiation. Prospero level is low in neural stem cells and their immediate progeny, but is upregulated in larval neurons and it is unknown how this process is controlled. Here, we use single molecule fluorescent in situ hybridisation to show that larval neurons selectively transcribe a long prospero mRNA isoform containing a 15 kb 3 untranslated region, which is bound in the brain by the conserved RNA-binding protein Syncrip/hnRNPQ. Syncrip binding increases the mRNA stability of the long prospero isoform, which allows an upregulation of Prospero protein production. Our findings highlight a regulatory strategy involving alternative polyadenylation followed by differential post-transcriptional regulation.

developmental biology