Human U4/U6.U5 and U4atac/U6atac.U5 tri-snRNPs exhibit similar protein compositions

被引:67
作者
Schneider, C [1 ]
Will, CL [1 ]
Makarova, OV [1 ]
Makarov, EM [1 ]
Lührmann, R [1 ]
机构
[1] Max Planck Inst Biophys Chem, Dept Cellular Biochem, D-37077 Gottingen, Germany
关键词
D O I
10.1128/MCB.22.10.3219-3229.2002
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
In the U12-dependent spliceosome, the U4atac/U6atac snRNP represents the functional analogue of the major U4/U6 snRNP. Little information is available presently regarding the protein composition of the former snRNP and its association with other snRNPs. In this report we show that human U4atac/U6atac di-snRNPs associate with U5 snRNPs to form a 25S U4atac/U6atac.U5 trimeric particle. Comparative analysis of minor and major tri-snRNPs by using immunoprecipitation experiments revealed that their protein compositions are very similar, if not identical. Not only U5-specific proteins but, surprisingly, all tested U4/U6- and major tri-snRNP-specific proteins were detected in the minor tri-snRNP complex. Significantly, the major tri-snRNP-specific proteins 65K and 110K, which are required for integration of the major tri-snRNP into the U2-dependent spliceosome, were among those proteins detected in the minor tri-snRNP, raising an interesting question as to how the specificity of addition of tri-snRNP to the corresponding spliceosome is maintained. Moreover, immunodepletion studies demonstrated that the U4/U6-specific 61K protein, which is involved in the formation of major tri-snRNPs, is essential for the association of the U4atac/U6atac di-snRNP with U5 to form the U4atac/U6atac.U5 tri-snRNP. Subsequent immunoprecipitation studies demonstrated that those proteins detected in the minor tri-snRNP complex are also incorporated into U12-dependent spliceosomes. This remarkable conservation of polypeptides between minor and major spliceosomes, coupled with the absence of significant sequence similarity between the functionally analogous snRNAs, supports an evolutionary model in which most major and minor spliceosomal proteins, but not snRNAs, are derived from a common ancestor.
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页码:3219 / 3229
页数:11
相关论文
共 44 条
[1]   A doughnut-shaped heteromer of human Sm-like proteins binds to the 3′-end of U6 snRNA, thereby facilitating U4/U6 duplex formation in vitro [J].
Achsel, T ;
Brahms, H ;
Kastner, B ;
Bachi, A ;
Wilm, M ;
Lührmann, R .
EMBO JOURNAL, 1999, 18 (20) :5789-5802
[2]   The human U5-220kD protein (hPrp8) forms a stable RNA-free complex with several US-specific proteins, including an RNA unwindase, a homologue of ribosomal elongation factor EF-2, and a novel WD-40 protein [J].
Achsel, T ;
Ahrens, K ;
Brahms, H ;
Teigelkamp, S ;
Lührmann, R .
MOLECULAR AND CELLULAR BIOLOGY, 1998, 18 (11) :6756-6766
[3]   PRE-MESSENGER-RNA SPLICING INVITRO REQUIRES INTACT U4/U6 SMALL NUCLEAR RIBONUCLEOPROTEIN [J].
BLACK, DL ;
STEITZ, JA .
CELL, 1986, 46 (05) :697-704
[4]   Evolutionary fates and origins of U12-type introns [J].
Burge, CB ;
Padgett, RA ;
Sharp, PA .
MOLECULAR CELL, 1998, 2 (06) :773-785
[5]  
Burge CB, 1999, RNA WORLD, P525
[6]   Specific alterations of U1-C protein or U1 small nuclear RNA can eliminate the requirement of Prp28p, an essential DEAD box splicing factor [J].
Chen, JYF ;
Stands, L ;
Staley, JP ;
Jackups, RR ;
Latus, LJ ;
Chang, TH .
MOLECULAR CELL, 2001, 7 (01) :227-232
[7]   ACCURATE TRANSCRIPTION INITIATION BY RNA POLYMERASE-II IN A SOLUBLE EXTRACT FROM ISOLATED MAMMALIAN NUCLEI [J].
DIGNAM, JD ;
LEBOVITZ, RM ;
ROEDER, RG .
NUCLEIC ACIDS RESEARCH, 1983, 11 (05) :1475-1489
[8]  
Fetzer S, 1997, RNA, V3, P344
[9]   Initial recognition of U12-dependent introns requires both U11/5′ splice-side and U12/branchpoint interactions [J].
Frilander, MJ ;
Steitz, JA .
GENES & DEVELOPMENT, 1999, 13 (07) :851-863
[10]   Dynamic exchanges of RNA interactions leading to catalytic core formation in the U12-dependent spliceosome [J].
Frilander, MJ ;
Steitz, JA .
MOLECULAR CELL, 2001, 7 (01) :217-226