Genetic analysis of the repetitive carboxyl-terminal domain of the largest subunit of mouse RNA polymerase II.
Open Access
- 1 January 1988
- journal article
- research article
- Published by Taylor & Francis in Molecular and Cellular Biology
- Vol. 8 (1) , 330-339
- https://doi.org/10.1128/mcb.8.1.330
Abstract
The carboxyl-terminal domain (CTD) of the mouse RNA polymerase II largest subunit consists of 52 repeats of a seven-amino-acid block with the consensus sequence Tyr-Ser-Pro-Thr-Ser-Pro-Ser. A genetic approach was used to determine whether the CTD plays an essential role in RNA polymerase function. Deletion, insertion, and substitution mutations were created in the repetitive region of an alpha-amanitin-resistant largest-subunit gene. The effects of these mutations on RNA polymerase II activity were assayed by measuring the ability of mutant genes to confer alpha-amanitin resistance after transfection of susceptible rodent cells. Mutations that resulted in CTDs containing between 36 and 78 repeats had no effect on the transfer of alpha-amanitin resistance, whereas mutations with 25 or fewer repeats were inactive in this assay. Mutations that contained 29, 31, or 32 repeats had an intermediate effect; the number of alpha-amanitin-resistant colonies was lower and the colonies obtained were smaller, indicating that the mutant RNA polymerase II was defective. In addition, not all of the heptameric repeats were functionally equivalent in that repeats that diverged in up to three amino acids from the consensus sequence could not substitute for the conserved heptamer repeats. We concluded that the CTD is essential for RNA polymerase II activity, since substantial mutations in this region result in loss of function.This publication has 29 references indexed in Scilit:
- Detection of specific sequences among DNA fragments separated by gel electrophoresisPublished by Elsevier ,2006
- The C-terminal domain of the largest subunit of RNA polymerase II of Saccharomyces cerevisiae, Drosophila melanogaster, and mammals: a conserved structure with an essential function.Molecular and Cellular Biology, 1988
- RNA polymerase II of DrosophilaJournal of Molecular Biology, 1987
- A rapid alkaline extraction procedure for screening recombinant plasmid DNANucleic Acids Research, 1979
- Mapping temperature-sensitive and host-range mutations of adenovirus type 5 by marker rescueVirology, 1978
- DNA sequencing with chain-terminating inhibitorsProceedings of the National Academy of Sciences, 1977
- Labeling deoxyribonucleic acid to high specific activity in vitro by nick translation with DNA polymerase IJournal of Molecular Biology, 1977
- Screening λgt Recombinant Clones by Hybridization to Single Plaques in SituScience, 1977
- Isolation and characterization of an alpha-amanitin-resistant rat myoblast mutant cell line possessing alpha-amanitin-resistant RNA polymerase II.Journal of Biological Chemistry, 1975
- Regulation of RNA polymerase II activity in a mutant rat myoblast cell line resistant to α amanitinNature, 1975