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Biology subjects

Pichling, P.

Publications and source records attributed to Pichling, P..

3 recordsLinked to original sources

HNRNPH1-mediated splicing events regulate EIF4G1 transcript variant composition and the organization of the AURKA 5' UTR

HNRNPH1 is a regulator of alternative splicing, but few studies have defined the splicing events it mediates. Here, we used short- and long-read RNA sequencing to interrogate the transcriptome-wide effects of HNRNPH1 depletion and its regulation of specific splicing events. Differential alternative splicing analysis revealed effects on the transcriptome that involved all splice event categories. We confirmed HNRNPH1s regulation of a splicing event involving TCF3-exons 18a and 18b that encode distinct TCF3 transcription factor isoforms. Extending this finding, we present evidence that in neuroblastoma, HNRNPH1 is a MYCN target, potentially explaining the higher levels of HNRNPH1 and TCF3-exon 18a transcript variants in this tumor type. Analysis of two skipped exon events determined that HNRNPH1 regulates the splicing of exons encoding part of the EIF4G1 translation initiation factors N-terminus and an exon included in the 5UTR of specific transcript variants encoding the mitotic kinase AURKA. Using reporter constructs, we show this AURKA 5UTR exon enhances expression, suggesting HNRNPH1 could contribute to regulating AURKA protein levels. Our findings highlight HNRNPH1s roles in regulating the expression of proteins with diverse cellular functions. Key pointsO_LIHNRNPH1 regulates the expression of proteins with diverse cellular functions, including proteins involved in the regulation of gene expression and essential cellular mechanisms. C_LIO_LIDepletion of HNRNPH1 alters the expression of specific protein-coding EIF4G1 transcript variants. C_LIO_LIHNRNPH1 mediates the inclusion of an AURKA 5UTR exon that enhances protein expression. C_LI Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=198 SRC="FIGDIR/small/667222v1_ufig1.gif" ALT="Figure 1"> View larger version (44K): org.highwire.dtl.DTLVardef@13780f1org.highwire.dtl.DTLVardef@f276d8org.highwire.dtl.DTLVardef@588245org.highwire.dtl.DTLVardef@d08551_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Machine learning-augmented molecular dynamics simulations (MD) reveal insights into the disconnect between affinity and activation of ZTPriboswitch ligands

The challenge of targeting RNA with small molecules necessitates a better understanding of RNA-ligand interaction mechanisms. However, the dynamic nature of nucleic acids, their ligand-induced stabilization, and how conformational changes influence gene expression pose significant difficulties for experimental investigation. This work employs a combination of computational and experimental methods to address these challenges. By integrating structure-informed design, crystallography, and machine learning-augmented all-atom molecular dynamics simulations (MD) we synthesized, biophysically and biochemically characterized, and studied the dissociation of a library of small molecule activators of the ZTP riboswitch, a ligand-binding RNA motif that regulates bacterial gene expression. We uncovered key interaction mechanisms, revealing valuable insights into the role of ligand binding kinetics on riboswitch activation. Further, we established that ligand on-rates determine activation potency as opposed to binding affinity and elucidated RNA structural differences, which provide mechanistic insights into the interplay of RNA structure on riboswitch activation.

biochemistry↗

EWSR1's visual modalities are defined by its association with nucleic acids and RNA polymerase II

We report systematic analysis of endogenous EWSR1s cellular organization. We demonstrate that EWSR1, which contains low complexity and nucleic acid binding domains, is present in cells in faster and slower-recovering fractions, indicative of a protein undergoing both rapid exchange and longer-term interactions. The employment of complementary high-resolution imaging approaches shows EWSR1 exists in in two visual modalities, a distributed state which is present throughout the nucleoplasm, and a concentrated state consistent with the formation of foci. Both EWSR1 visual modalities localize with nascent RNA. EWSR1 foci concentrate in regions of euchromatin, adjacent to protein markers of transcriptional activation, and significantly colocalize with phosphorylated RNA polymerase II. Interestingly, EWSR1 and FUS, another FET protein, exhibit distinct spatial organizations. Our results contribute to bridging the gap between our understanding of the biophysical and biochemical properties of FET proteins, including EWSR1, their functions as transcriptional regulators, and the participation of these proteins in tumorigenesis and neurodegenerative disease. SUMMARYRajan et al. report the visualization of endogenous EWSR1. EWSR1 exists in two visual modalities in the nucleoplasm, one distributed and one as foci. Both EWSR1 modalities localize with nascent RNA. EWSR1 foci concentrate in regions of euchromatin and colocalize with phosphorylated RNA polymerase II.

cell biology↗