|
|
|
Research Papers
Department of Cell Biology, Albert Einstein College of Medicine, Bronx, New York 10461.
Abstract
In vivo experiments have demonstrated that the ribosomal protein L32 of Saccharomyces cerevisiae brings about the inhibition of splicing of the transcript of its own gene through an RNA structure comprised largely of the first exon. We now show that L32, itself, binds specifically to this RNA. Splicing of the RPL32 transcript in vitro is blocked by the presence of L32. Furthermore, addition of the 75-nucleotide RNA representing the 5' end of the RPL32 transcript stimulates specifically the splicing of the RPL32 substrate, presumably by competing for L32 present in the extract. Use of RNAs carrying mutations shown to abolish the regulation of splicing, either as substrates or as competitors, confirmed that the in vitro reaction is a faithful representation of the situation in vivo. We conclude that the regulation of splicing occurs through the specific binding of L32 to an RNA structure within the first 75 nucleotides of the RPL32 transcript. The RPL32 substrate, bound to L32, forms a complex with U1 snRNP, the first step in spliceosome assembly. The presence of L32 prevents the ATP-dependent association of the U2 snRNP necessary to form a complete spliceosome.
This article has been cited by other articles:
![]() |
X. Abad, M. Vera, S. P. Jung, E. Oswald, I. Romero, V. Amin, P. Fortes, and S. I. Gunderson Requirements for gene silencing mediated by U1 snRNA binding to a target sequence Nucleic Acids Res., April 1, 2008; 36(7): 2338 - 2352. [Abstract] [Full Text] [PDF] |
||||
![]() |
F. Guan, R. M. Caratozzolo, R. Goraczniak, E. S. Ho, and S. I. Gunderson A bipartite U1 site represses U1A expression by synergizing with PIE to inhibit nuclear polyadenylation RNA, December 1, 2007; 13(12): 2129 - 2140. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Clery, V. Bourguignon-Igel, C. Allmang, A. Krol, and C. Branlant An improved definition of the RNA-binding specificity of SECIS-binding protein 2, an essential component of the selenocysteine incorporation machinery Nucleic Acids Res., March 19, 2007; 35(6): 1868 - 1884. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Zhao, K. B. McIntosh, D. Rudra, S. Schawalder, D. Shore, and J. R. Warner Fine-structure analysis of ribosomal protein gene transcription. Mol. Cell. Biol., July 1, 2006; 26(13): 4853 - 4862. [Abstract] [Full Text] [PDF] |
||||
![]() |
F. W. Scherrer Jr and M. Spingola A subset of Mer1p-dependent introns requires Bud13p for splicing activation and nuclear retention RNA, July 1, 2006; 12(7): 1361 - 1372. [Abstract] [Full Text] [PDF] |
||||
![]() |
E. Buratti and F. E. Baralle Influence of RNA Secondary Structure on the Pre-mRNA Splicing Process Mol. Cell. Biol., December 15, 2004; 24(24): 10505 - 10514. [Full Text] [PDF] |
||||
![]() |
S. A. WHITE, M. HOEGER, J. J. SCHWEPPE, A. SHILLINGFORD, V. SHIPILOV, and J. ZARUTSKIE Internal loop mutations in the ribosomal protein L30 binding site of the yeast L30 RNA transcript RNA, March 1, 2004; 10(3): 369 - 377. [Abstract] [Full Text] [PDF] |
||||
![]() |
M. Spingola, J. Armisen, and M. Ares Jr Mer1p is a modular splicing factor whose function depends on the conserved U2 snRNP protein Snu17p Nucleic Acids Res., February 18, 2004; 32(3): 1242 - 1250. [Abstract] [Full Text] [PDF] |
||||
![]() |
Y. Zhao, J.-H. Sohn, and J. R. Warner Autoregulation in the Biosynthesis of Ribosomes Mol. Cell. Biol., January 15, 2003; 23(2): 699 - 707. [Abstract] [Full Text] [PDF] |
||||
![]() |
A. Henras, C. Dez, J. Noaillac-Depeyre, Y. Henry, and M. Caizergues-Ferrer Accumulation of H/ACA snoRNPs depends on the integrity of the conserved central domain of the RNA-binding protein Nhp2p Nucleic Acids Res., July 1, 2001; 29(13): 2733 - 2746. [Abstract] [Full Text] [PDF] |
||||
![]() |
T. L. Iouk, J. D. Aitchison, S. Maguire, and R. W. Wozniak Rrb1p, a Yeast Nuclear WD-Repeat Protein Involved in the Regulation of Ribosome Biosynthesis Mol. Cell. Biol., February 15, 2001; 21(4): 1260 - 1271. [Abstract] [Full Text] |
||||
![]() |
Q. M. Mitrovich and P. Anderson Unproductively spliced ribosomal protein mRNAs are natural targets of mRNA surveillance in C. elegans Genes & Dev., September 1, 2000; 14(17): 2173 - 2184. [Abstract] [Full Text] |
||||
![]() |
Z. Jiang, J. Cote, J. M. Kwon, A. M. Goate, and J. Y. Wu Aberrant Splicing of tau Pre-mRNA Caused by Intronic Mutations Associated with the Inherited Dementia Frontotemporal Dementia with Parkinsonism Linked to Chromosome 17 Mol. Cell. Biol., June 1, 2000; 20(11): 4036 - 4048. [Abstract] [Full Text] |
||||
![]() |
C. A. Davis, L. Grate, M. Spingola, and M. Ares Jr Test of intron predictions reveals novel splice sites, alternatively spliced mRNAs and new introns in meiotically regulated genes of yeast Nucleic Acids Res., April 15, 2000; 28(8): 1700 - 1706. [Abstract] [Full Text] [PDF] |
||||
![]() |
B. Li, C. R. Nierras, and J. R. Warner Transcriptional Elements Involved in the Repression of Ribosomal Protein Synthesis Mol. Cell. Biol., August 1, 1999; 19(8): 5393 - 5404. [Abstract] [Full Text] [PDF] |
||||
![]() |
S. W. Fewell and J. L. Woolford Jr. Ribosomal Protein S14 of Saccharomyces cerevisiae Regulates Its Expression by Binding to RPS14B Pre-mRNA and to 18S rRNA Mol. Cell. Biol., January 1, 1999; 19(1): 826 - 834. [Abstract] [Full Text] [PDF] |
||||
![]() |
Z.-h. Si, D. Rauch, and C. M. Stoltzfus The Exon Splicing Silencer in Human Immunodeficiency Virus Type 1 Tat Exon 3 Is Bipartite and Acts Early in Spliceosome Assembly Mol. Cell. Biol., September 1, 1998; 18(9): 5404 - 5413. [Abstract] [Full Text] |
||||
![]() |
S. A. Woodson Ironing out the kinks: splicing and translation in bacteria Genes & Dev., May 1, 1998; 12(9): 1243 - 1247. [Full Text] |
||||
![]() |
V. P. Mauro and G. M. Edelman rRNA-like sequences occur in diverse primary transcripts: Implications for the control of gene expression PNAS, January 21, 1997; 94(2): 422 - 427. [Abstract] [Full Text] [PDF] |
||||