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PMID: 12185499 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

The human minisatellites MS1, MS32, MS205 and CEB1 integrated into the yeast genome exhibit different degrees of mitotic instability but are all stabilised by RAD27.

Current genetics ·Vol. 41 ·No. 5 ·2002-08-00 ·Pages 333-41

Maleki S, Cederberg H, Rannug U

Abstract

The yeast Rad27 protein is homologous to mammalian Fen1 and is involved in the processing of replication intermediates. Enhanced instability of various artificial repetitive DNA sequences in RAD27-deficient yeast strains has been observed previously and shown to involve preferentially expansion mutations. In the present investigation, we characterised the mitotic instability of alleles of the naturally occurring human minisatellites MS1, MS32, MS205 and CEB1 and the modified MS1 alleles containing more highly homogeneous repeat regions than the original alleles. These minisatellites demonstrated more pronounced instability in rad27 Delta strains, with increases in the frequencies of both expansion and contraction mutants. In RAD27 strains, MS32 and MS205 were relatively stable, while MS1 and CEB1 were unstable, indicating that the effect of RAD27 on stability is influenced by intrinsic properties of the repeat array. This conclusion received further support from the remarkably high frequency of length-mutants observed for the modified allele of MS1. Thus, our findings emphasise the importance of: (1) comparing results obtained with various naturally occurring minisatellites and (2) manipulating their sequences in attempts to understand the molecular basis for mitotic stability/instability of minisatellite DNA.

MeSH Terms
Base Sequence DNA Repair/physiology Endodeoxyribonucleases/physiology Flap Endonucleases Genome, Fungal Humans Minisatellite Repeats Molecular Sequence Data Organisms, Genetically Modified Saccharomyces cerevisiae/genetics,physiology Saccharomyces cerevisiae Proteins/physiology
Chemicals
Saccharomyces cerevisiae Proteins Endodeoxyribonucleases Flap Endonucleases FEN1 protein, human RAD27 protein, S cerevisiae
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Maleki Shohreh
Department of Genetic and Cellular Toxicology, Stockholm University, S-10691 Stockholm, Sweden.
Cederberg Håkan
Rannug Ulf
Article Info
Journal
Current genetics
Abbr.
Curr Genet
ISSN
0172-8083
Published
2002-08-00
Epub
2002-00-11
Pages
333-41
Language
English
Region
United States
NLM ID
8004904
Subset
IM
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