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Structure of SRSF1 RRM1 bound to RNA reveals an unexpected bimodal mode of interaction and explains its involvement in SMN1 exon7 splicing
JournalArticle (Originalarbeit in einer wissenschaftlichen Zeitschrift)
 
ID 4613851
Author(s) Cléry, Antoine; Krepl, Miroslav; Nguyen, Cristina K. X.; Moursy, Ahmed; Jorjani, Hadi; Katsantoni, Maria; Okoniewski, Michal; Mittal, Nitish; Zavolan, Mihaela; Sponer, Jiri; Allain, Frédéric H.-T.
Author(s) at UniBasel Zavolan, Mihaela
Katsantoni, Maria
Jorjani, Hadi
Mittal, Nitish
Year 2021
Title Structure of SRSF1 RRM1 bound to RNA reveals an unexpected bimodal mode of interaction and explains its involvement in SMN1 exon7 splicing
Journal Nature Communications
Volume 12
Number 1
Pages / Article-Number 428
Mesh terms Amino Acid Substitution; Asparagine, genetics; Computational Biology; Exons, genetics; Glutamic Acid, genetics; HEK293 Cells; Humans; Molecular Dynamics Simulation; Muscular Atrophy, Spinal, therapy; Nuclear Magnetic Resonance, Biomolecular; Protein Engineering; RNA Recognition Motif, genetics; RNA Splice Sites, genetics; RNA Splicing; Recombinant Proteins, ultrastructure; Serine-Arginine Splicing Factors, ultrastructure; Survival of Motor Neuron 1 Protein, genetics; Uridine, metabolism
Abstract The human prototypical SR protein SRSF1 is an oncoprotein that contains two RRMs and plays a pivotal role in RNA metabolism. We determined the structure of the RRM1 bound to RNA and found that the domain binds preferentially to a CN motif (N is for any nucleotide). Based on this solution structure, we engineered a protein containing a single glutamate to asparagine mutation (E87N), which gains the ability to bind to uridines and thereby activates SMN exon7 inclusion, a strategy that is used to cure spinal muscular atrophy. Finally, we revealed that the flexible inter-RRM linker of SRSF1 allows RRM1 to bind RNA on both sides of RRM2 binding site. Besides revealing an unexpected bimodal mode of interaction of SRSF1 with RNA, which will be of interest to design new therapeutic strategies, this study brings a new perspective on the mode of action of SRSF1 in cells.
Publisher Nature Publishing Group
ISSN/ISBN 2041-1723
edoc-URL https://edoc.unibas.ch/81162/
Full Text on edoc No
Digital Object Identifier DOI 10.1038/s41467-020-20481-w
PubMed ID http://www.ncbi.nlm.nih.gov/pubmed/33462199
ISI-Number WOS:000611511500011
Document type (ISI) Journal Article
 
   

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03/05/2024