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Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22

[Image: see text] Splicing of precursor messenger RNA is catalyzed by the spliceosome, a dynamic ribonucleoprotein assembly including five small nuclear (sn)RNAs and >100 proteins. RNA components catalyze the two transesterification reactions, but proteins perform critical roles in assembly and r...

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Autores principales: Ciavarella, Joanna, Perea, William, Greenbaum, Nancy L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7512442/
https://www.ncbi.nlm.nih.gov/pubmed/32984674
http://dx.doi.org/10.1021/acsomega.0c01674
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author Ciavarella, Joanna
Perea, William
Greenbaum, Nancy L.
author_facet Ciavarella, Joanna
Perea, William
Greenbaum, Nancy L.
author_sort Ciavarella, Joanna
collection PubMed
description [Image: see text] Splicing of precursor messenger RNA is catalyzed by the spliceosome, a dynamic ribonucleoprotein assembly including five small nuclear (sn)RNAs and >100 proteins. RNA components catalyze the two transesterification reactions, but proteins perform critical roles in assembly and rearrangement. The catalytic core comprises a paired complex of U2 and U6 snRNAs for the major form of the spliceosome and U12 and U6(atac) snRNAs for the minor variant (∼0.3% of all spliceosomes in higher eukaryotes); the latter shares key catalytic sequence elements and performs identical chemistry. Here we use solution NMR techniques to show that the U12–U6(atac) snRNA complex of both human and Arabidopsis maintain base-pairing patterns similar to those in the three-helix model of the U2–U6 snRNA complex that position key elements to form the spliceosome’s active site. However, in place of the stacked base pairs at the base of the U6 snRNA intramolecular stem loop and the central junction of the U2–U6 snRNA complex, we see altered geometry in the single-stranded hinge region opposing termini of the snRNAs to enable interaction between the key elements. We then use electrophoretic mobility shift assays and fluorescence assays to show that the protein RBM22, implicated in remodeling the human U2–U6 snRNA complex prior to catalysis, also binds the U12–U6(atac) snRNA complexes specifically and with similar affinity as to U2–U6 snRNA (a mean K(d) for the two methods = 3.4 and 8.0 μM for U2–U6 and U12–U6(atac) snRNA complexes, respectively), suggesting that RBM22 performs the same role in both spliceosomes.
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spelling pubmed-75124422020-09-25 Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22 Ciavarella, Joanna Perea, William Greenbaum, Nancy L. ACS Omega [Image: see text] Splicing of precursor messenger RNA is catalyzed by the spliceosome, a dynamic ribonucleoprotein assembly including five small nuclear (sn)RNAs and >100 proteins. RNA components catalyze the two transesterification reactions, but proteins perform critical roles in assembly and rearrangement. The catalytic core comprises a paired complex of U2 and U6 snRNAs for the major form of the spliceosome and U12 and U6(atac) snRNAs for the minor variant (∼0.3% of all spliceosomes in higher eukaryotes); the latter shares key catalytic sequence elements and performs identical chemistry. Here we use solution NMR techniques to show that the U12–U6(atac) snRNA complex of both human and Arabidopsis maintain base-pairing patterns similar to those in the three-helix model of the U2–U6 snRNA complex that position key elements to form the spliceosome’s active site. However, in place of the stacked base pairs at the base of the U6 snRNA intramolecular stem loop and the central junction of the U2–U6 snRNA complex, we see altered geometry in the single-stranded hinge region opposing termini of the snRNAs to enable interaction between the key elements. We then use electrophoretic mobility shift assays and fluorescence assays to show that the protein RBM22, implicated in remodeling the human U2–U6 snRNA complex prior to catalysis, also binds the U12–U6(atac) snRNA complexes specifically and with similar affinity as to U2–U6 snRNA (a mean K(d) for the two methods = 3.4 and 8.0 μM for U2–U6 and U12–U6(atac) snRNA complexes, respectively), suggesting that RBM22 performs the same role in both spliceosomes. American Chemical Society 2020-09-04 /pmc/articles/PMC7512442/ /pubmed/32984674 http://dx.doi.org/10.1021/acsomega.0c01674 Text en Copyright © 2020 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Ciavarella, Joanna
Perea, William
Greenbaum, Nancy L.
Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title_full Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title_fullStr Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title_full_unstemmed Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title_short Topology of the U12–U6(atac) snRNA Complex of the Minor Spliceosome and Binding by NTC-Related Protein RBM22
title_sort topology of the u12–u6(atac) snrna complex of the minor spliceosome and binding by ntc-related protein rbm22
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7512442/
https://www.ncbi.nlm.nih.gov/pubmed/32984674
http://dx.doi.org/10.1021/acsomega.0c01674
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