Abstract
Domain 5 (D5) is a small hairpin structure within group II introns. A bimolecular assay system depends on binding by D5 to an intron substrate for self-splicing activity. In this study, mutations in D5 identify two among six nearly invariant nucleotides as being critical for 5' splice junction hydrolysis but unimportant for binding. A mutation at another site in D5 blocks binding. Thus, mutations can distinguish two D5 functions: substrate binding and catalysis. The secondary structure of D5 may resemble helix I formed by the U2 and U6 small nuclear RNAs in the eukaryotic spliceosome. Our results support a revision of the previously proposed correspondence between D5 and helix I on the basis of the critical trinucleotide 5'-AGC-3' present in both. We suggest that this trinucleotide plays a similar role in promoting the chemical reactions for both splicing systems.
MeSH Terms
Base Composition
Base Sequence
Binding, Competitive
Catalysis
Conserved Sequence
DNA-Directed RNA Polymerases/genetics
Genetic Variation
Introns
Kinetics
Molecular Sequence Data
Nucleic Acid Conformation
Promoter Regions, Genetic
RNA/chemistry,metabolism
RNA Precursors/chemistry,metabolism
RNA Splicing
Regression Analysis
Templates, Genetic
Thermodynamics
Transcription, Genetic
Viral Proteins
Chemicals
RNA Precursors
Viral Proteins
RNA
bacteriophage T7 RNA polymerase
DNA-Directed RNA Polymerases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Peebles C L
Department of Biological Sciences, University of Pittsburgh, PA 15260-7700, USA.
Zhang M
Perlman P S
Franzen J S
References (13)
13 references, click to expand
-
Base-stacking and base-pairing contributions to helix stability: thermodynamics of double-helix formation with CCGG, CCGGp, CCGGAp, ACCGGp, CCGGUp, and ACCGGUp.
Biochemistry. 1983 Jan 18;22(2):256-63
PMID: 6824629
-
Group II intron domain 5 facilitates a trans-splicing reaction.
Mol Cell Biol. 1988 Jun;8(6):2361-6
PMID: 3405208
-
Comparative and functional anatomy of group II catalytic introns--a review.
Gene. 1989 Oct 15;82(1):5-30
PMID: 2684776
-
Synthesis of small RNAs using T7 RNA polymerase.
Methods Enzymol. 1989;180:51-62
PMID: 2482430
-
Group II introns deleted for multiple substructures retain self-splicing activity.
Mol Cell Biol. 1992 May;12(5):1950-8
PMID: 1569932
-
A novel base-pairing interaction between U2 and U6 snRNAs suggests a mechanism for the catalytic activation of the spliceosome.
Cell. 1992 Nov 27;71(5):803-17
PMID: 1423631
-
Thermal activation of a group II intron ribozyme reveals multiple conformational states.
Biochemistry. 1994 Sep 20;33(37):11315-26
PMID: 7727382
-
Domain 5 interacts with domain 6 and influences the second transesterification reaction of group II intron self-splicing.
Nucleic Acids Res. 1993 Apr 25;21(8):1797-804
PMID: 8493099
-
Building a kinetic framework for group II intron ribozyme activity: quantitation of interdomain binding and reaction rate.
Biochemistry. 1994 Mar 8;33(9):2716-25
PMID: 8117737
-
Catalytic site components common to both splicing steps of a group II intron.
Science. 1994 Nov 25;266(5189):1383-7
PMID: 7973729
-
The stereochemical course of group II intron self-splicing.
Science. 1994 Dec 9;266(5191):1685-8
PMID: 7527587
-
Dynamic RNA-RNA interactions in the spliceosome.
Annu Rev Genet. 1994;28:1-26
PMID: 7534458
-
Kinetic analysis of the 5' splice junction hydrolysis of a group II intron promoted by domain 5.
Nucleic Acids Res. 1993 Feb 11;21(3):627-34
PMID: 8382803