Abstract
The role of the enzyme poly(adenosine diphosphate-ribose) polymerase (PADPRP) in DNA repair at the level of the gene was investigated with human HeLa cells in which PADPRP antisense transcripts are inducible with dexamethasone. After such induction, the cellular content of PADPRP is reduced by 90%. DNA damage and its repair was studied in the essential dihydrofolate reductase (DHFR) gene after exposure of the cells to either ultraviolet (UV) irradiation or the alkylating agent nitrogen mustard. The expression of the antisense construct had no effect on gene-specific repair of UV-induced pyrimidine dimers. In contrast, induced antisense cells were deficient in the gene-specific repair of nitrogen mustard-induced lesions. Dexamethasone itself did not inhibit gene-specific repair in control cells. Thus, PADPRP appears to participate in the gene-specific repair of alkylation damage, but not in the repair of UV-induced pyrimidine dimers. Clonal survival assays revealed that cells depleted of PADPRP showed an increased susceptibility to nitrogen mustard, supporting the notion that repair of essential genes is critical for cellular survival.
MeSH Terms
Alkylation
Cell Survival/drug effects
DNA/drug effects,genetics,radiation effects
DNA Damage
DNA Repair/physiology
Dexamethasone/pharmacology
Gene Expression/drug effects
HeLa Cells
Humans
Mechlorethamine/pharmacology,toxicity
Poly(ADP-ribose) Polymerases/metabolism
Pyrimidine Dimers/metabolism
RNA, Antisense
Tetrahydrofolate Dehydrogenase/genetics
Ultraviolet Rays
Chemicals
Pyrimidine Dimers
RNA, Antisense
Mechlorethamine
Dexamethasone
DNA
Tetrahydrofolate Dehydrogenase
Poly(ADP-ribose) Polymerases
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Stevnsner T
Laboratory of Molecular Genetics, National Institute of Aging, National Institutes of Health, Baltimore, MD 21224.
Ding R
Smulson M
Bohr V A
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