Components required forin vitrocleavage and polyadenylation of eukaryotic mRNA
Open Access
- 1 January 1988
- journal article
- research article
- Published by Oxford University Press (OUP) in Nucleic Acids Research
- Vol. 16 (12) , 5323-5344
- https://doi.org/10.1093/nar/16.12.5323
Abstract
We have studied in vitro cleavage/polyadenylation of precursor RNA containing herpes simplex virus type 2 poly A site sequences and have analysed four RNA/protein complexes which form during in vitro reactions. Two complexes, A and B, form extremely rapidly and are then progressively replaced by a third complex, C which is produced following cleavage and polyadenylation of precursor RNA. Substitution of ATP with cordycepin triphosphate prevents polyadenylation and the formation of complex C however a fourth complex, D, results which contains cleaved RNA. A precursor RNA lacking GU-rich downstream sequences required for efficient cleavage/ polyadenylation fails to form complex B and produces a markedly reduced amount of complex A. As these GU-rich sequences are required for efficient cleavage, this establishes a relationship between complex B formation and cleavage/polyadenylation of precursor RNA in vitro. The components required for in vitro RNA processing have been separated by fractionation of the nuclear extract on Q-Sepharose and Biorex 70 columns. A Q-Sepharose fraction forms complex B but does not process RNA. Addition of a Biorex 70 fraction restores cleavage activity at the poly A site but this fraction does not appear to contribute to complex formation. Moreover, in the absence of polyethylene glycol, precursor RNA is not cleaved and polyadenylated, however, complexes A and B readily form. Thus, while complex B is necessary for in vitro cleavage and polyadenylation, it may not contain all the components required for this processing.This publication has 38 references indexed in Scilit:
- Electrophoretic separation of polyadenylation-specific complexes.Genes & Development, 1987
- Poly(A) site cleavage in a HeLa nuclear extract is dependent on downstream sequencesCell, 1985
- Accurate cleavage and polyadenylation of exogenous RNA substrateCell, 1985
- A sequence downstream of AAUAAA is required for rabbit β-globin mRNA 3′-end formationNature, 1984
- Requirement of a downstream sequence for generation of a poly(A) addition siteCell, 1984
- Site-specific polyadenylation in a cell-free reactionCell, 1984
- α-Thalassaemia caused by a polyadenylation signal mutationNature, 1983
- Inhibition of RNA cleavage but not polyadenylation by a point mutation in mRNA 3′ consensus sequence AAUAAANature, 1983
- Steps in the processing of Ad2 mRNA: Poly(A)+ Nuclear sequences are conserved and poly(A) addition precedes splicingCell, 1978
- 3′ Non-coding region sequences in eukaryotic messenger RNANature, 1976