Transcriptional silencing at Saccharomyces telomeres: implications for other organisms
- 21 January 2002
- journal article
- review article
- Published by Springer Nature in Oncogene
- Vol. 21 (4) , 512-521
- https://doi.org/10.1038/sj.onc.1205078
Abstract
Telomeres are the natural ends of eukaryotic chromosomes. In most organisms, telomeres consist of simple, repeated DNA with the strand running 5′ to 3′ towards the end of the chromosome being rich in G residues. In cases where the very end of the chromosome has been examined, the G-strand is extended to form a short, single stranded tail. The chromatin structure of telomeric regions often has features that distinguish them from other parts of the genome. Because telomeres protect chromosome ends from degradation and end-to-end fusions and prevent the loss of terminal DNA by serving as a substrate for telomerase, they are essential for the stable maintenance of eukaryotic chromosomes. In addition to their essential functions, telomeres in diverse organisms are specialized sites for gene expression. Transcription of genes located next to telomeres is repressed, a phenomenon termed telomere position effect (TPE). TPE is best characterized in the yeast Saccharomyces cerevisiae. This article will focus on the silencing properties of Saccharomyces telomeres and end with speculation on the role of TPE in yeasts and other organisms.Keywords
This publication has 97 references indexed in Scilit:
- Role of NAD+ in the Deacetylase Activity of the SIR2-like ProteinsBiochemical and Biophysical Research Communications, 2000
- Cohabitation of insulators and silencing elements in yeast subtelomeric regionsThe EMBO Journal, 1999
- GFP tagging of budding yeast chromosomes reveals that protein–protein interactions can mediate sister chromatid cohesionCurrent Biology, 1996
- The carboxy termini of Sir4 and Rap1 affect Sir3 localization: evidence for a multicomponent complex required for yeast telomeric silencing.The Journal of cell biology, 1995
- Internal tracts of telomeric DNA act as silencers in Saccharomyces cerevisiae.Genes & Development, 1994
- Distortion of the DNA Double Helix by RAP1 at Silencers and Multiple Telomeric Binding SitesJournal of Molecular Biology, 1993
- ATP-dependent recognition of eukaryotic origins of DNA replication by a multiprotein complexNature, 1992
- RAP1 protein interacts with yeast telomeres in vivo: Overproduction alters telomere structure and decreases chromosome stabilityCell, 1990
- A positive selection for mutants lacking orotidine-5′-phosphate decarboxylase activity in yeast: 5-fluoro-orotic acid resistanceMolecular Genetics and Genomics, 1984
- A family of Saccharomyces cerevisiae repetitive autonomously replicating sequences that have very similar genomic environmentsJournal of Molecular Biology, 1983