Abstract
Free full text
The cap and the 3' splice site similarly affect polyadenylation efficiency.
Abstract
The 5' cap of a mammalian pre-mRNA has been shown to interact with splicing components at the adjacent 5' splice site for processing of the first exon and the removal of the first intron (E. Izaurralde, J. Lewis, C. McGuigan, M. Jankowska, E. Darzynkiewicz, and I.W. Mattaj, Cell 78:657-668, 1994). Likewise, it has been shown that processing of the last exon and removal of the last intron involve interaction between splicing components at the 3' splice site and the polyadenylation complex at the polyadenylation signal (M. Niwa, S. D. Rose, and S.M. Berget, Genes Dev. 4:1552-1559, 1990; M. Niwa and S. M. Berget, Genes Dev. 5:2086-2095, 1991). These findings suggest that the cap provides a function in first exon processing which is similar to the function of the 3' splice site at last exon processing. To determine whether caps and 3' splice sites function similarly, we compared the effects of the cap and the 3' splice site on the in vitro utilization of the simian virus 40 late polyadenylation signal. We show that the presence of a m7GpppG cap, but not a cap analog, can positively affect the efficiency of polyadenylation of a polyadenylation-only substrate. Cap analogs do not stimulate polyadenylation because they fail to bind titratable cap-binding factors. The failure of cap analogs to stimulate polyadenylation can be overcome if a 3' splice site is present upstream of the polyadenylation signal. These data indicate that factors interacting with the cap or the 3' splice site function similarly to affect polyadenylation signal, along with m7GpppG cap, is inhibitory to polyadenylation. This finding suggests that the interaction between the cap-binding complexes and splicing components at the 5' splice site may form a complex which is inhibitory to further processing if splicing of an adjacent intron is not achieved.
Full Text
Selected References
These references are in PubMed. This may not be the complete list of references from this article.
- Berget SM. Exon recognition in vertebrate splicing. J Biol Chem. 1995 Feb 10;270(6):2411–2414. [Abstract] [Google Scholar]
- Carswell S, Alwine JC. Efficiency of utilization of the simian virus 40 late polyadenylation site: effects of upstream sequences. Mol Cell Biol. 1989 Oct;9(10):4248–4258. [Europe PMC free article] [Abstract] [Google Scholar]
- Chiou HC, Dabrowski C, Alwine JC. Simian virus 40 late mRNA leader sequences involved in augmenting mRNA accumulation via multiple mechanisms, including increased polyadenylation efficiency. J Virol. 1991 Dec;65(12):6677–6685. [Europe PMC free article] [Abstract] [Google Scholar]
- Conway L, Wickens M. A sequence downstream of A-A-U-A-A-A is required for formation of simian virus 40 late mRNA 3' termini in frog oocytes. Proc Natl Acad Sci U S A. 1985 Jun;82(12):3949–3953. [Europe PMC free article] [Abstract] [Google Scholar]
- Edery I, Sonenberg N. Cap-dependent RNA splicing in a HeLa nuclear extract. Proc Natl Acad Sci U S A. 1985 Nov;82(22):7590–7594. [Europe PMC free article] [Abstract] [Google Scholar]
- Furth PA, Choe WT, Rex JH, Byrne JC, Baker CC. Sequences homologous to 5' splice sites are required for the inhibitory activity of papillomavirus late 3' untranslated regions. Mol Cell Biol. 1994 Aug;14(8):5278–5289. [Europe PMC free article] [Abstract] [Google Scholar]
- Hashimoto C, Steitz JA. A small nuclear ribonucleoprotein associates with the AAUAAA polyadenylation signal in vitro. Cell. 1986 May 23;45(4):581–591. [Abstract] [Google Scholar]
- Izaurralde E, Lewis J, McGuigan C, Jankowska M, Darzynkiewicz E, Mattaj IW. A nuclear cap binding protein complex involved in pre-mRNA splicing. Cell. 1994 Aug 26;78(4):657–668. [Abstract] [Google Scholar]
- Lührmann R, Kastner B, Bach M. Structure of spliceosomal snRNPs and their role in pre-mRNA splicing. Biochim Biophys Acta. 1990 Nov 30;1087(3):265–292. [Abstract] [Google Scholar]
- Lutz CS, Alwine JC. Direct interaction of the U1 snRNP-A protein with the upstream efficiency element of the SV40 late polyadenylation signal. Genes Dev. 1994 Mar 1;8(5):576–586. [Abstract] [Google Scholar]
- Lutz CS, Murthy KG, Schek N, O'Connor JP, Manley JL, Alwine JC. Interaction between the U1 snRNP-A protein and the 160-kD subunit of cleavage-polyadenylation specificity factor increases polyadenylation efficiency in vitro. Genes Dev. 1996 Feb 1;10(3):325–337. [Abstract] [Google Scholar]
- Manley JL. A complex protein assembly catalyzes polyadenylation of mRNA precursors. Curr Opin Genet Dev. 1995 Apr;5(2):222–228. [Abstract] [Google Scholar]
- Moore CL, Sharp PA. Site-specific polyadenylation in a cell-free reaction. Cell. 1984 Mar;36(3):581–591. [Abstract] [Google Scholar]
- Moore CL, Sharp PA. Accurate cleavage and polyadenylation of exogenous RNA substrate. Cell. 1985 Jul;41(3):845–855. [Abstract] [Google Scholar]
- Nesic D, Cheng J, Maquat LE. Sequences within the last intron function in RNA 3'-end formation in cultured cells. Mol Cell Biol. 1993 Jun;13(6):3359–3369. [Europe PMC free article] [Abstract] [Google Scholar]
- Nesic D, Maquat LE. Upstream introns influence the efficiency of final intron removal and RNA 3'-end formation. Genes Dev. 1994 Feb 1;8(3):363–375. [Abstract] [Google Scholar]
- Niwa M, Berget SM. Mutation of the AAUAAA polyadenylation signal depresses in vitro splicing of proximal but not distal introns. Genes Dev. 1991 Nov;5(11):2086–2095. [Abstract] [Google Scholar]
- Niwa M, MacDonald CC, Berget SM. Are vertebrate exons scanned during splice-site selection? Nature. 1992 Nov 19;360(6401):277–280. [Abstract] [Google Scholar]
- Niwa M, Rose SD, Berget SM. In vitro polyadenylation is stimulated by the presence of an upstream intron. Genes Dev. 1990 Sep;4(9):1552–1559. [Abstract] [Google Scholar]
- Ohno M, Sakamoto H, Shimura Y. Preferential excision of the 5' proximal intron from mRNA precursors with two introns as mediated by the cap structure. Proc Natl Acad Sci U S A. 1987 Aug;84(15):5187–5191. [Europe PMC free article] [Abstract] [Google Scholar]
- Raju VS, Jacob ST. Association of poly(A) polymerase with U1 RNA. J Biol Chem. 1988 Aug 15;263(23):11067–11070. [Abstract] [Google Scholar]
- Sadofsky M, Alwine JC. Sequences on the 3' side of hexanucleotide AAUAAA affect efficiency of cleavage at the polyadenylation site. Mol Cell Biol. 1984 Aug;4(8):1460–1468. [Europe PMC free article] [Abstract] [Google Scholar]
- Sadofsky M, Connelly S, Manley JL, Alwine JC. Identification of a sequence element on the 3' side of AAUAAA which is necessary for simian virus 40 late mRNA 3'-end processing. Mol Cell Biol. 1985 Oct;5(10):2713–2719. [Europe PMC free article] [Abstract] [Google Scholar]
- Schek N, Cooke C, Alwine JC. Definition of the upstream efficiency element of the simian virus 40 late polyadenylation signal by using in vitro analyses. Mol Cell Biol. 1992 Dec;12(12):5386–5393. [Europe PMC free article] [Abstract] [Google Scholar]
- Wahle E, Keller W. The biochemistry of 3'-end cleavage and polyadenylation of messenger RNA precursors. Annu Rev Biochem. 1992;61:419–440. [Abstract] [Google Scholar]
- Wassarman KM, Steitz JA. Association with terminal exons in pre-mRNAs: a new role for the U1 snRNP? Genes Dev. 1993 Apr;7(4):647–659. [Abstract] [Google Scholar]
- Wickens M. How the messenger got its tail: addition of poly(A) in the nucleus. Trends Biochem Sci. 1990 Jul;15(7):277–281. [Abstract] [Google Scholar]
- Wilusz J, Shenk T. A uridylate tract mediates efficient heterogeneous nuclear ribonucleoprotein C protein-RNA cross-linking and functionally substitutes for the downstream element of the polyadenylation signal. Mol Cell Biol. 1990 Dec;10(12):6397–6407. [Europe PMC free article] [Abstract] [Google Scholar]
Articles from Molecular and Cellular Biology are provided here courtesy of Taylor & Francis
Full text links
Read article at publisher's site: https://doi.org/10.1128/mcb.16.6.2579
Read article for free, from open access legal sources, via Unpaywall: https://europepmc.org/articles/pmc231248?pdf=render
Free after 4 months at mcb.asm.org
http://mcb.asm.org/cgi/reprint/16/6/2579
Free to read at mcb.asm.org
http://mcb.asm.org/cgi/content/abstract/16/6/2579
Citations & impact
Impact metrics
Citations of article over time
Alternative metrics
Discover the attention surrounding your research
https://www.altmetric.com/details/120764315
Article citations
The Nuclear Cap-Binding Complex, a multitasking binding partner of RNA polymerase II transcripts.
J Biochem, 175(1):9-15, 01 Dec 2023
Cited by: 2 articles | PMID: 37830942 | PMCID: PMC10771035
Review Free full text in Europe PMC
The Dual Role of the Innate Immune System in the Effectiveness of mRNA Therapeutics.
Int J Mol Sci, 24(19):14820, 01 Oct 2023
Cited by: 5 articles | PMID: 37834268 | PMCID: PMC10573212
Review Free full text in Europe PMC
The polyA tail facilitates splicing of last introns with weak 3' splice sites via PABPN1.
EMBO Rep, 24(10):e57128, 04 Sep 2023
Cited by: 4 articles | PMID: 37661812 | PMCID: PMC10561182
mRNA-Based Therapeutics in Cancer Treatment.
Pharmaceutics, 15(2):622, 13 Feb 2023
Cited by: 14 articles | PMID: 36839944 | PMCID: PMC9964383
Review Free full text in Europe PMC
The code and beyond: transcription regulation by the RNA polymerase II carboxy-terminal domain.
Nat Rev Mol Cell Biol, 18(4):263-273, 01 Mar 2017
Cited by: 258 articles | PMID: 28248323
Review
Go to all (58) article citations
Similar Articles
To arrive at the top five similar articles we use a word-weighted algorithm to compare words from the Title and Abstract of each citation.
Splice site skipping in polyomavirus late pre-mRNA processing.
J Virol, 65(12):6637-6644, 01 Dec 1991
Cited by: 8 articles | PMID: 1719232 | PMCID: PMC250731
An intron enhancer recognized by splicing factors activates polyadenylation.
Genes Dev, 10(2):208-219, 01 Jan 1996
Cited by: 92 articles | PMID: 8566754
Utilization of splicing elements and polyadenylation signal elements in the coupling of polyadenylation and last-intron removal.
Mol Cell Biol, 19(7):4971-4979, 01 Jul 1999
Cited by: 63 articles | PMID: 10373547 | PMCID: PMC84315
An active role for splicing in 3'-end formation.
Wiley Interdiscip Rev RNA, 2(4):459-470, 16 Dec 2010
Cited by: 47 articles | PMID: 21957037
Review