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Processing of targeted psoralen cross-links in Xenopus oocytes
D J Segal1, A F Faruqi, P M Glazer
1Department of Biochemistry, University of Utah School of Medicine, Salt Lake City 84132, USA.
Abstract:
Psoralen cross-links have been shown to be both mutagenic and recombinagenic in bacterial, yeast, and mammalian cells. Double-strand breaks (DSBs) have been implicated as intermediates in the removal of psoralen cross-links. Recent work has suggested that site-specific mutagenesis and recombination might be achieved through the use of targeted psoralen adducts. The fate of plasmids containing psoralen adducts was evaluated in Xenopus oocytes, an experimental system that has well-characterized recombination capabilities and advantages in the analysis of intermediates in DNA metabolism. Psoralen adducts were delivered to a specific site by a triplex-forming oligonucleotide. These lesions are clearly recognized and processed in oocytes, since mutagenesis was observed at the target site. The spectrum of induced mutations was compared with that found in similar studies in mammalian cells. Plasmids carrying multiple random adducts were preferentially degraded, perhaps due to the introduction of DSBs. However, when DNAs carrying site-specific adducts were examined, no plasmid loss was observed and removal of cross-links was found to be very slow. Sensitive assays for DSB-dependent homologous recombination were performed with substrates with one or two cross-link sites. No adduct-stimulated recombination was observed with a single lesion, and only very low levels were observed with paired lesions, even when a large proportion of the cross-links was removed by the oocytes. We conclude that DSBs or other recombinagenic structures are not efficiently formed at psoralen adducts in Xenopus oocytes. While psoralen is not a promising reagent for stimulating site-specific recombination, it is effective in inducing targeted mutations.
Insights
Psoralen adducts induce targeted mutations in Xenopus oocytes but do not efficiently stimulate DNA recombination. Double-strand breaks (DSBs) are not readily formed at psoralen cross-links in this system.
Area of Science:
- Molecular Biology
- Genetics
- DNA Repair Mechanisms
Background:
- Psoralen cross-links are known mutagens and recombinagens in various cell types.
- Double-strand breaks (DSBs) are suspected intermediates in psoralen cross-link removal.
- Targeted psoralen adducts offer potential for site-specific mutagenesis and recombination.
Purpose of the Study:
- To evaluate the fate of psoralen-adducted plasmids in Xenopus oocytes.
- To investigate the role of psoralen adducts in inducing site-specific mutations and recombination.
- To analyze intermediates in DNA metabolism using Xenopus oocytes' well-characterized recombination capabilities.
Main Methods:
- Delivery of psoralen adducts to specific DNA sites using triplex-forming oligonucleotides.
- Analysis of mutagenesis at targeted psoralen adducts.
- Assessment of plasmid degradation and cross-link removal.
- Sensitive assays for DSB-dependent homologous recombination with single and paired psoralen lesions.
Main Results:
- Psoralen adducts were recognized and processed, leading to mutagenesis at the target site in Xenopus oocytes.
- Plasmids with multiple random adducts showed preferential degradation, potentially due to DSBs.
- Site-specific psoralen adducts were slowly removed, and no plasmid loss was observed.
- No significant psoralen adduct-stimulated homologous recombination was detected, even with paired lesions.
Conclusions:
- Psoralen adducts are effective in inducing targeted mutations in Xenopus oocytes.
- Psoralen is not a suitable reagent for stimulating site-specific recombination due to inefficient DSB formation.
- Xenopus oocytes provide a valuable system for studying DNA metabolism intermediates.