Autonomous splicing and complementation of in vivo-assembled spliceosomes.
Open Access
- 1 March 1989
- journal article
- research article
- Published by Rockefeller University Press in The Journal of cell biology
- Vol. 108 (3), 765-777
- https://doi.org/10.1083/jcb.108.3.765
Abstract
We have used an in vivo system generating assayable amounts of a specific pre-mRNA to study the relationship between splicing and an operationally defined nuclear matrix preparation (NM). When NM is prepared by extraction of DNase I-treated nuclei with an approximately physiological concentration of KCl (0.1 M), a portion of NM-associated precursor can be spliced in vitro in the presence of ATP and Mg2+ and in the absence of splicing extract ("autonomous splicing"). We propose that the autonomous reaction, which does not exhibit a temporal lag and is half-complete in 5 min, occurs in fully assembled, matrix-bound ribonucleoprotein complexes (in vivo spliceosomes). Extraction of the NM with concentrations of KCl greater than 0.4 M eliminates autonomous splicing but leaves behind preassembled complexes that can be complemented for splicing with HeLa cell nuclear extract. The splicing complementing factor, representing one or more activities present in the nuclear extract and also in the cytoplasmic S100 fraction, is relatively heat resistant, devoid of an RNA component, and does not bind to DEAE-Sepharose in 0.1 M KCl. It exists in the nucleus in two forms; bound to autonomous spliceosomes and free in the nucleoplasm. Biochemical features of the complementation reaction, and conditions for reversible uncoupling of the two splicing steps are described and discussed.This publication has 50 references indexed in Scilit:
- Purification and visualization of native spliceosomesCell, 1988
- Spliceosome assembly in yeast.Genes & Development, 1987
- Splicing of yeast nuclear pre-mRNA in vitro requires a functional 40S spliceosome and several extrinsic factors.Genes & Development, 1987
- A protein that specifically recognizes the 3′ splice site of mammalian pre-mRNA introns is associated with a small nuclear ribonucleoproteinCell, 1986
- The 3′ Splice Site of Pre-Messenger RNA Is Recognized by a Small Nuclear RibonucleoproteinScience, 1985
- The "Spliceosome": Yeast Pre-Messenger RNA Associates with a 40 S Complex in a Splicing-Dependent ReactionScience, 1985
- Nuclear RNA-protein interactions and messenger RNA processing.The Journal of cell biology, 1983
- Processing of high molecular weight ovalbumin and ovomucoid precursor RNAs to messenger RNACell, 1980
- Distribution of Na+, K+ and Cl− between nucleus and cytoplasm inChironomus salivary gland cellsThe Journal of Membrane Biology, 1977
- Intracellular Distribution of Free Potassium in Chironomus Salivary GlandsScience, 1975