Genetic analysis of the role of human U1 snRNA in mRNA splicing: I. Effect of mutations in the highly conserved stem-loop I of U1.
Open Access
- 1 May 1989
- journal article
- research article
- Published by Cold Spring Harbor Laboratory in Genes & Development
- Vol. 3 (5) , 697-707
- https://doi.org/10.1101/gad.3.5.697
Abstract
The 5' splice site mutation known as hr440 can be suppressed efficiently in vivo by a compensatory base change in U1 small nuclear RNA (snRNA). We have now begun a second-site reversion analysis of this suppressor U1-4u snRNA (which has a C----U change at position 4) to identify U1 nucleotides that are essential for mRNA splicing. Point mutations in U1-4u that disrupt the structure of stem-loop I or alter phylogenetically conserved nucleotides within the loop cause loss of suppression. The level of suppressor activity observed for most mutants correlated with the abundance of the corresponding suppressor RNA, suggesting that mutations in stem-loop I cause loss of suppression by destabilizing U1 snRNA or the U1 snRNP (small nuclear ribonucleoprotein particle). We favor the interpretation that incompletely or improperly assembled U1 snRNPs are unstable, because two severe point mutations in stem-loop I were found to decrease the binding of U1 snRNP-specific proteins in vitro. In a separate set of experiments, we found that increasing the distance between stem-loop I and the 5' end of U1 snRNA also inhibited suppression but did not affect assembly or stability of the U1 snRNP. This suggests that the relationship between the 5' splice site and the body of the U1 snRNP is important for mRNA splicing.This publication has 55 references indexed in Scilit:
- The role of the mammalian branchpoint sequence in pre-mRNA splicing.Genes & Development, 1988
- Saccharomyces cerevisiae Has a U1-Like Small Nuclear RNA with Unexpected PropertiesScience, 1987
- S. cerevisiae U1 RNA is large and has limited primary sequence homology to metazoan U1 snRNACell, 1987
- Recognition of the TACTAAC box during mRNA splicing in yeast involves base pairing to the U2-like snRNACell, 1987
- A protein that specifically recognizes the 3′ splice site of mammalian pre-mRNA introns is associated with a small nuclear ribonucleoproteinCell, 1986
- 3′ end formation of U1 snRNA precursors is coupled to transcription from snRNA promotersCell, 1986
- Formation of the 3′ end of U1 snRNA requires compatible snRNA promoter elementsCell, 1986
- A compensatory base change in U1 snRNA suppresses a 5′ splice site mutationCell, 1986
- U1 Small Nuclear RNA Genes Are Subject to Dosage Compensation in Mouse CellsScience, 1985
- The "Spliceosome": Yeast Pre-Messenger RNA Associates with a 40 S Complex in a Splicing-Dependent ReactionScience, 1985