Literature DB >> 23345524

Rearrangements within human spliceosomes captured after exon ligation.

Janine O Ilagan1, Robert J Chalkley, A L Burlingame, Melissa S Jurica.   

Abstract

In spliceosomes, dynamic RNA/RNA and RNA/protein interactions position the pre-mRNA substrate for the two chemical steps of splicing. Not all of these interactions have been characterized, in part because it has not been possible to arrest the complex at clearly defined states relative to chemistry. Previously, it was shown in yeast that the DEAD/H-box protein Prp22 requires an extended 3' exon to promote mRNA release from the spliceosome following second-step chemistry. In line with that observation, we find that shortening the 3' exon blocks cleaved lariat intron and mRNA release in human splicing extracts, which allowed us to stall human spliceosomes in a new post-catalytic complex (P complex). In comparison to C complex, which is blocked at a point following first-step chemistry, we detect specific differences in RNA substrate interactions near the splice sites. These differences include extended protection across the exon junction and changes in protein crosslinks to specific sites in the 5' and 3' exons. Using selective reaction monitoring (SRM) mass spectrometry, we quantitatively compared P and C complex proteins and observed enrichment of SF3b components and loss of the putative RNA-dependent ATPase DHX35. Electron microscopy revealed similar structural features for both complexes. Notably, additional density is present when complexes are chemically fixed, which reconciles our results with previously reported C complex structures. Our ability to compare human spliceosomes before and after second-step chemistry has opened a new window to rearrangements near the active site of spliceosomes, which may play roles in exon ligation and mRNA release.

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Year:  2013        PMID: 23345524      PMCID: PMC3677250          DOI: 10.1261/rna.034223.112

Source DB:  PubMed          Journal:  RNA        ISSN: 1355-8382            Impact factor:   4.942


  73 in total

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Journal:  Genes Dev       Date:  2007-04-01       Impact factor: 11.361

5.  Exploring the architecture of the intact supraspliceosome using electron microscopy.

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Journal:  Genes Dev       Date:  2007-04-01       Impact factor: 11.361

9.  Structural characterization of the fission yeast U5.U2/U6 spliceosome complex.

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7.  Coupling of spliceosome complexity to intron diversity.

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Review 8.  Lights, camera, action! Capturing the spliceosome and pre-mRNA splicing with single-molecule fluorescence microscopy.

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Review 9.  Modulating splicing with small molecular inhibitors of the spliceosome.

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10.  A human postcatalytic spliceosome structure reveals essential roles of metazoan factors for exon ligation.

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