Abstract
To investigate the role of DNA damage and nucleotide excision repair in intrachromosomal homologous recombination, a plasmid containing duplicated copies of the gene coding for hygromycin resistance was introduced into the genome of a repair-proficient human cell line, KMST-6, and two repair-deficient lines, XP2OS(SV) from xeroderma pigmentosum complementation group A and XP2YO(SV) from complementation group F. Neither hygromycin-resistance gene codes for a functional enzyme because each contains an insertion/deletion mutation at a unique site, but recombination between the two defective genes can yield hygromycin-resistant cells. The rates of spontaneous recombination in normal and xeroderma pigmentosum cell strains containing the recombination substrate were found to be similar. The frequency of UV-induced recombination was determined for three of these cell strains. At low doses, the group A cell strain and the group F cell strain showed a significant increase in frequency of recombinants. The repair-proficient cell strain required 10- to 20-fold higher doses of UV to exhibit comparable increases in frequency of recombinants. These results suggest that unexcised DNA damage, rather than the excision repair process per se, stimulates such recombination.
MeSH Terms
Blotting, Southern
Cell Line
Cell Survival/radiation effects
Chromosomes, Human/radiation effects
DNA Repair
Dose-Response Relationship, Radiation
Genes, Viral
Humans
Mutation
Plasmids
Promoter Regions, Genetic
Recombination, Genetic/radiation effects
Restriction Mapping
Simplexvirus/enzymology,genetics
Thymidine Kinase/genetics
Transfection
Ultraviolet Rays
Viral Structural Proteins/genetics
Xeroderma Pigmentosum/genetics
Chemicals
Viral Structural Proteins
Thymidine Kinase
Authors & Affiliations
5 authors, click to expand affiliations / ORCID
Tsujimura T
Department of Microbiology, Michigan State University, East Lansing 48824-1316.
Maher V M
Godwin A R
Liskay R M
McCormick J J
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