Related Content
Search Google Scholar for:
|
|
Science 1 October 1993: Vol. 262. no. 5130, pp. 102 - 105 DOI: 10.1126/science.8211112
|
|
Articles
Science, Vol 262, Issue 5130, 102-105
Copyright © 1993 by American Association for the Advancement of Science
Interaction of mammalian splicing factor SF3a with U2 snRNP and relation of its 60-kD subunit to yeast PRP9
R Brosi,
K Groning,
SE Behrens,
R Luhrmann,
and
A Kramer
Departement de Biologie Cellulaire, Sciences III, Universite de Geneve, Switzerland.
In the assembly of a prespliceosome, U2 small nuclear ribonucleoprotein (snRNP) functions in pre-messenger RNA (mRNA) splicing together with splicing factors (SFs) 3a, SF3b, and several other proteins. The 17S but not the 12S form of U2 snRNP is active in splicing-complex formation. Here it is shown that the SF3a subunits correspond to three of the 17S U2 snRNP-specific polypeptides. SF3a interacts with U2 snRNP in the presence of SF3b to generate a structure similar to 17S U2 snRNP, which suggests a function for SF3a and SF3b in the incorporation of U2 snRNP into the spliceosome. Furthermore, the 60-kilodalton subunit of SF3a is related to the yeast splicing protein PRP9.
THIS ARTICLE HAS BEEN CITED BY OTHER ARTICLES:
- Fibroblast growth factor-2 regulates the stability of nuclear bodies.
- A.-F. Bruns, J. van Bergeijk, C. Lorbeer, A. Nolle, J. Jungnickel, C. Grothe, and P. Claus (2009)
PNAS
106, 12747-12752
| Abstract »
| Full Text »
| PDF »
- Members of the Heterogeneous Nuclear Ribonucleoprotein H Family Activate Splicing of an HIV-1 Splicing Substrate by Promoting Formation of ATP-dependent Spliceosomal Complexes.
- M. C. Schaub, S. R. Lopez, and M. Caputi (2007)
J. Biol. Chem.
282, 13617-13626
| Abstract »
| Full Text »
| PDF »
- Structure and thermodynamics of a conserved U2 snRNA domain from yeast and human.
- D. G. Sashital, V. Venditti, C. G. Angers, G. Cornilescu, and S. E. Butcher (2007)
RNA
13, 328-338
| Abstract »
| Full Text »
| PDF »
- U2 snRNA-Protein Contacts in Purified Human 17S U2 snRNPs and in Spliceosomal A and B Complexes..
- O. Dybkov, C. L. Will, J. Deckert, N. Behzadnia, K. Hartmuth, and R. Luhrmann (2006)
Mol. Cell. Biol.
26, 2803-2816
| Abstract »
| Full Text »
| PDF »
- Interactions of the Yeast SF3b Splicing Factor.
- Q. Wang, J. He, B. Lynn, and B. C. Rymond (2005)
Mol. Cell. Biol.
25, 10745-10754
| Abstract »
| Full Text »
| PDF »
- Splicing potentiation by growth factor signals via estrogen receptor phosphorylation.
- Y. Masuhiro, Y. Mezaki, M. Sakari, K.-i. Takeyama, T. Yoshida, K. Inoue, J. Yanagisawa, S. Hanazawa, B. W. O'Malley, and S. Kato (2005)
PNAS
102, 8126-8131
| Abstract »
| Full Text »
| PDF »
- Human Splicing Factor SF3a, but Not SF1, Is Essential for Pre-mRNA Splicing In Vivo.
- G. Tanackovic and A. Kramer (2005)
Mol. Biol. Cell
16, 1366-1377
| Abstract »
| Full Text »
| PDF »
- The WW Domain-Containing Proteins Interact with the Early Spliceosome and Participate in Pre-mRNA Splicing In Vivo.
- K.-T. Lin, R.-M. Lu, and W.-Y. Tarn (2004)
Mol. Cell. Biol.
24, 9176-9185
| Abstract »
| Full Text »
| PDF »
- A role for Cajal bodies in the final steps of U2 snRNP biogenesis.
- D. Nesic, G. Tanackovic, and A. Kramer (2004)
J. Cell Sci.
117, 4423-4433
| Abstract »
| Full Text »
| PDF »
- Mer1p is a modular splicing factor whose function depends on the conserved U2 snRNP protein Snu17p.
- M. Spingola, J. Armisen, and M. Ares Jr (2004)
Nucleic Acids Res.
32, 1242-1250
| Abstract »
| Full Text »
| PDF »
- Human RNPS1 and Its Associated Factors: a Versatile Alternative Pre-mRNA Splicing Regulator In Vivo.
- E. Sakashita, S. Tatsumi, D. Werner, H. Endo, and A. Mayeda (2004)
Mol. Cell. Biol.
24, 1174-1187
| Abstract »
| Full Text »
| PDF »
- Domains in Human Splicing Factors SF3a60 and SF3a66 Required for Binding to SF3a120, Assembly of the 17S U2 snRNP, and Prespliceosome Formation.
- D. Nesic and A. Kramer (2001)
Mol. Cell. Biol.
21, 6406-6417
| Abstract »
| Full Text »
| PDF »
- Sequences upstream of the branch site are required to form helix II between U2 and U6 snRNA in a trans-splicing reaction.
- G. Ast, T. Pavelitz, and A. M. Weiner (2001)
Nucleic Acids Res.
29, 1741-1749
| Abstract »
| Full Text »
| PDF »
- Functional Cus1p Is Found with Hsh155p in a Multiprotein Splicing Factor Associated with U2 snRNA.
- M. H. Pauling, D. S. McPheeters, and M. Ares Jr. (2000)
Mol. Cell. Biol.
20, 2176-2185
| Abstract »
| Full Text »
- ATP can be dispensable for prespliceosome formation in yeast.
- R. Perriman and M. Ares Jr. (2000)
Genes & Dev.
14, 97-107
| Abstract »
| Full Text »
- Presence of WT1, the Wilm's Tumor Suppressor Gene Product, in Nuclear Poly(A)+ Ribonucleoprotein.
- M. R. Ladomery, J. Slight, S. Mc Ghee, and N. D. Hastie (1999)
J. Biol. Chem.
274, 36520-36526
| Abstract »
| Full Text »
| PDF »
- Characterization of a Protein Complex Containing Spliceosomal Proteins SAPs 49, 130, 145, and 155.
- B. K. Das, L. Xia, L. Palandjian, O. Gozani, Y. Chyung, and R. Reed (1999)
Mol. Cell. Biol.
19, 6796-6802
| Abstract »
| Full Text »
| PDF »
- Combined Biochemical and Electron Microscopic Analyses Reveal the Architecture of the Mammalian U2 snRNP.
- A. Kramer, P. Gruter, K. Groning, and B. Kastner (1999)
J. Cell Biol.
145, 1355-1368
| Abstract »
| Full Text »
| PDF »
- Detection of a Novel ATP-Dependent Cross-Linked Protein at the 5' Splice Site-U1 Small Nuclear RNA Duplex by Methylene Blue-Mediated Photo-Cross-Linking.
- Z.-R. Liu, B. Sargueil, and C. W. J. Smith (1998)
Mol. Cell. Biol.
18, 6910-6920
| Abstract »
| Full Text »
- CUS2, a Yeast Homolog of Human Tat-SF1, Rescues Function of Misfolded U2 through an Unusual RNA Recognition Motif.
- D. Yan, R. Perriman, H. Igel, K. J. Howe, M. Neville, and M. Ares Jr. (1998)
Mol. Cell. Biol.
18, 5000-5009
| Abstract »
| Full Text »
- WW domain-mediated interactions reveal a spliceosome-associated protein that binds a third class of proline-rich motif: The proline glycine and methionine-rich motif.
- M. T. Bedford, R. Reed, and P. Leder (1998)
PNAS
95, 10602-10607
| Abstract »
| Full Text »
| PDF »
- Multiple Developmental Requirements of Noisette, the Drosophila Homolog of the U2 snRNP-Associated Polypeptide SF3a60.
- V. Meyer, B. Oliver, and D. Pauli (1998)
Mol. Cell. Biol.
18, 1835-1843
| Abstract »
| Full Text »
- Snt309p, a Component of the Prp19p-Associated Complex That Interacts with Prp19p and Associates with the Spliceosome Simultaneously with or Immediately after Dissociation of U4 in the Same Manner as Prp19p.
- H.-R. Chen, S.-P. Jan, T. Y. Tsao, Y.-J. Sheu, J. Banroques, and S.-C. Cheng (1998)
Mol. Cell. Biol.
18, 2196-2204
| Abstract »
| Full Text »
- Molecular Characterization of a Novel, Widespread Nuclear Protein That Colocalizes with Spliceosome Components.
- M. S. Schmidt-Zachmann, S. Knecht, and A. Krämer (1998)
Mol. Biol. Cell
9, 143-160
| Abstract »
| Full Text »
- Cloning of mDEAH9, a putative RNA helicase and mammalian homologue of Saccharomyces cerevisiae splicing factor Prp43.
- S. Gee, S. W. Krauss, E. Miller, K. Aoyagi, J. Arenas, and J. G. Conboy (1997)
PNAS
94, 11803-11807
| Abstract »
| Full Text »
| PDF »
- Dynamics of the U1 Small Nuclear Ribonucleoprotein during Yeast Spliceosome Assembly.
- S. W. Ruby (1997)
J. Biol. Chem.
272, 17333-17341
| Abstract »
| Full Text »
| PDF »
- A human protein required for the second step of pre-mRNA splicing is functionally related to a yeast splicing factor..
- D S Horowitz and A R Krainer (1997)
Genes & Dev.
11, 139-151
| Abstract »
| PDF »
- The Saccharomyces cerevisiae Prp5 Protein Has RNA-dependent ATPase Activity with Specificity for U2 Small Nuclear RNA.
- C. L. O'Day, G. Dalbadie-McFarland, and J. Abelson (1996)
J. Biol. Chem.
271, 33261-33267
| Abstract »
| Full Text »
| PDF »
- In Vitro Studies of the Prp9·Prp11·Prp21 Complex Indicate a Pathway for U2 Small Nuclear Ribonucleoprotein Activation.
- D. K. Wiest, C. L. O'Day, and J. Abelson (1996)
J. Biol. Chem.
271, 33268-33276
| Abstract »
| Full Text »
| PDF »
- CUS1, a suppressor of cold-sensitive U2 snRNA mutations, is a novel yeast splicing factor homologous to human SAP 145..
- S E Wells, M Neville, M Haynes, J Wang, H Igel, and M Ares (1996)
Genes & Dev.
10, 220-232
| Abstract »
| PDF »
- Evidence that sequence-independent binding of highly conserved U2 snRNP proteins upstream of the branch site is required for assembly of spliceosomal complex A..
- O Gozani, R Feld, and R Reed (1996)
Genes & Dev.
10, 233-243
| Abstract »
| PDF »
- In Vitro Splicing Deficiency Induced by a C to T Mutation at Position -3 in the Intron 10 Acceptor Site of the Phenylalanine Hydroxylase Gene in a Patient with Phenylketonuria.
- J. Jaruzelska, V. Abadie, Y. d'Aubenton-Carafa, E. Brody, A. Munnich, and J.ël. Marie (1995)
J. Biol. Chem.
270, 20370-20375
| Abstract »
| Full Text »
| PDF »
- Purification of the Spliceosome A-Complex and Its Visualization by Electron Microscopy.
- E. Furman and D. G. Glitz (1995)
J. Biol. Chem.
270, 15515-15522
| Abstract »
| Full Text »
| PDF »
- Dynamic association of proteins with the pre-mRNA branch region..
- A M MacMillan, C C Query, C R Allerson, S Chen, G L Verdine, and P A Sharp (1994)
Genes & Dev.
8, 3008-3020
| Abstract »
| PDF »
- The prespliceosome components SAP 49 and SAP 145 interact in a complex implicated in tethering U2 snRNP to the branch site..
- P Champion-Arnaud and R Reed (1994)
Genes & Dev.
8, 1974-1983
| Abstract »
| PDF »
- The yeast MUD2 protein: an interaction with PRP11 defines a bridge between commitment complexes and U2 snRNP addition..
- N Abovich, X C Liao, and M Rosbash (1994)
Genes & Dev.
8, 843-854
| Abstract »
| PDF »
- Correspondence between a mammalian spliceosome component and an essential yeast splicing factor.
- M Bennett and R Reed (1993)
Science
262, 105-108
| Abstract »
| PDF »
- Interaction between PRP11 and SPP91 yeast splicing factors and characterization of a PRP9-PRP11-SPP91 complex.
- P Legrain and C Chapon (1993)
Science
262, 108-110
| Abstract »
| PDF »
|
|