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Mutagenic DNA repair in Escherichia coli

VIII. Involvement of DNA polymerase III in constitutive and Inducible mutagenic repair after ultraviolet and gamma irradiation

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Summary

Mutagenic repair in Escherichia coli after ultraviolet (UV) irradiation has previously been shown to require a function of DNA polymerase III. In contrast, no effect of incubating a polC temperature-sensitive strain at 42° has been found after gamma irradiation. Thus at present there is no direct evidence for the involvement of polymerase III in gamma ray mutagenesis. This could, however, merely reflect the stability of the premutational lesion during the period of polymerase III insufficiency such that mutagenic repair is resumed on the plate during subsequent incubation at permissive temperature.

It was previously suggested that an inducible factor might interact with polymerase III to enable it to polymerise in an error-prone way in daughter strand gaps opposite non-coding lesions in the template strand. A temperature-resistant revertant (CM 792) of a temperature-sensitive polC strain (CM 731) has been isolated which has properties expected of a strain in which the polymerase III complex is no longer susceptible to the inducible co-factor. Its UV sensitivity, spontaneous mutation rate and mutagenic response to ethyl methanesulphonate are all normal or near normal, also the rates of mutation to prototrophy after gamma irradiation and to streptomycin resistance after UV. These latter mutations are believed to arise through constitutive mutagenic repair at sites in pre-existing DNA. In contrast, the rate of UV-induced mutation to prototrophy due to changes at ochre suppressor loci is greatly depressed and no Weigle-reactivation of bacteriophage T3 is observable; both these effects are believed to result from the action of inducible mutagenic repair in newly-replicated DNA. It is suggested that the 3′ to 5′ exnnuclease activity of the polymerase III complex in CM 792 may not be susceptible to inhibition by an inducible factor and so continues to remove “mismatched” bases inserted in newly-replicated DNA opposite damage template sites thus preventing the fixation of errors as mutations.

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References

  • Boyle, J.M., Symonds, N.: Radiation-sensitive mutants of T4D.1. T4y; a new radiation-sensitive mutant; effect of the mutation on radiation survival, growth and recombination. Mutation Res. 8, 431–439 (1969)

    Google Scholar 

  • Bridges, B.A.: Mechanisms of radiation mutagenesis in cellular and subcellular systems. Ann. Rev. Nucl. Sci. 19, 139–178 (1969)

    Google Scholar 

  • Bridges, B.A.: Recent advances in basic mutation research. Mutation Res. 44, 149–164 (1977)

    Google Scholar 

  • Bridges, B.A., Dennis, R.E., Munson, R.J.: Differential induction and repair of ultraviolet damage leading to true reversions and external suppressor mutations of an ochre codon in Escherichia coli B/r WP2. Genetics 57, 892–908 (1967)

    Google Scholar 

  • Bridges, B.A., Law, J., Munson, R.J.: Mutagenesis in Escherichia coli. II. Evidence for a common pathway for mutagenesis by ultraviolet light, ionizing radiation and thymine deprivation. Molec. gen. Genet. 103, 266–273 (1968)

    Google Scholar 

  • Bridges, B.A., Mottershead, R.P.: RecA+-dependent mutagenesis occurring before DNA replication in UV- and γ-irradiated Escherichia coli. Mutation Res. 13, 1–8 (1971)

    Google Scholar 

  • Bridges, B.A., Mottershead, R.P.: Mutagenic DNA repair in Escherichia coli. VII. Constitutive and inducible manifestations. Mutation Res. in press (1978)

  • Bridges, B.A., Mottershead, R.P., Rothwell, M.A., Green, M.H.L.: Repair deficient bacterial strains suitable for mutagenicity screening: tests with the fungicide captan. Chem.-Biol. Interactions 5, 77–84 (1972)

    Google Scholar 

  • Bridges, B.A., Mottershead, R.P., Sedgwick, S.G.: Mutagenic DNA repair in Escherichia coli. III. Requirement for a function of DNA polymerase III in ultraviolet light mutagenesis. Molec. gen. Genet. 144, 53–58 (1976)

    Google Scholar 

  • Brutlag, D., Kornberg, A.: Enzymatic synthesis of deoxyribonucleic acid. XXXIV. A proof reading function for the 3′–5′ exonuclease activity in deoxyribonucleic acid polymerases. J. biol. Chem. 247, 241–251 (1972).

    Google Scholar 

  • Byrnes, J.J., Downey, K.M., Que, B.G., Lee, M.Y.W., Black, V.L., So, A.G.: Selective inhibition of the 3′ to 5′ exonuclease activity associated with DNA polymerases: a mechanism of mutagenesis. Biochemistry 16, 3740–3746 (1977)

    Google Scholar 

  • Cooper, P.K., Hanawalt, P.C.: Heterogeneity of patch size in repair replicated DNA in Escherichia coli. J. molec. Biol. 67, 1–10 (1972)

    Google Scholar 

  • Davis, B.D., Mingioli, E.S.: Mutants of Escherichia coli requiring methionine or vitamin B12. J. Bact. 60, 17–28 (1950)

    Google Scholar 

  • defais, M., Fauquet, P., Radman, M., Errera, M.: Ultraviolet reactivation and ultraviolet mutagenesis of λ in different genetic systems. Virology 43, 495–503 (1971)

    Google Scholar 

  • Eyfjörd, J.E., Green, M.H.L., Bridges, B.A., Muriel, W.J.: Mutagenic DNA repair in Escherichia coli. V. The mechanism of mutation frequency decline. Mutation Res. 42, 33–44 (1977)

    Google Scholar 

  • Kondon, S., Ichikawa, H., Iwo, K., Kato, T.: Base change mutagenesis and prophage induction in strains of Escherichia coli with different DNA repair capacities. Genetics 66, 187–217 (1970)

    Google Scholar 

  • Loveless, A.: Possible relevance of 0–6 alkylation of deoxyguanosine to mutagenicity and carcinogenicity of nitrosamines and nitrosamides. Nature (Lond.) 223, 206–207 (1969)

    Google Scholar 

  • McHenry, C., Kornberg, A.: DNA polymerase III holoenzyme of Escherichia coli: aurification and resolution into subunits. J. biol. Chem. 252, 6478–6484 (1977)

    Google Scholar 

  • Meyn, M.S., Rossman, T., Troll, W.: A protease inhibitor blocks SOS functions in Escherichia coli: antipain prevents λ repressor inactivation, ultraviolet mutagenesis and filamentous growth. Proc. nat. Acad. Sci. (Wash.) 74, 1152–1156 (1977)

    Google Scholar 

  • Nishioka, H., Doudney, C.O.: Different modes of loss of photoreversibility of mutation and lethal damage in ultraviolet light resistant and sensitive bacteria. Mutation Res. 8, 215–228 (1969)

    Google Scholar 

  • Radman, M.: SOS repair hypothesis: phenomenology of an inducible DNA repair which is accompanied by mutagenesis. In: Molecular mechanism for repair of DNA, pp. 355–367 (P.C. Hanawalt, R. B. Setlow, eds.). New York: Plenum Press 1975

    Google Scholar 

  • Radman, M.: On the mechanism and genetic control of mutation: an approach to carcinogenesis. In: Colloque International du CNRS No. 256, pp. 293–306: Paris: CNRS 1977

    Google Scholar 

  • Sedgwick, S.G.: Genetic and kinetic evidence for different types of post-replication repair in Escherichia coli B. J. Bact. 123, 154–161 (1975)

    Google Scholar 

  • Sedgwick, S.G.: Misrepair of overlapping daughter strand gaps as a possible mechanism for UV-induced mutagenesis in UVR strains of Escherichia coli. A general model for induced mutagenesis by misrepair (SOS repair) of closely spaced lesions. Mutation Res. 41, 185–200 (1976)

    Google Scholar 

  • Tomilin, N.N.: Repair of gamma ray induced lesions in E. coli cells deficient in DNA polymerase I and having thermosensitive DNA polymerase III. Molec. gen. Genet. 129, 97–103 (1974)

    Google Scholar 

  • Weigle, J.J., Dulbecco, R.: Induction of mutations in bacteriophage T3 by ultraviolet light. Experientia (Basel) 9, 372–373 (1953)

    Google Scholar 

  • Witkin, E.M.: Mutation-proof and mutation-prome modes of survival in derivatives of Escherichia coli B differing in sensitivity to ultraviolet light. Brookhaven Symp. Biol. 20, 17–55 (1967)

    Google Scholar 

  • Witkin, E.M.: Ultraviolet induced mutation and DNA repair. Ann. Rev. Genet. 3, 525–552 (1969)

    Google Scholar 

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Communicated by H. Böhme

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Bridges, B.A., Mottershead, R.P. Mutagenic DNA repair in Escherichia coli . Molec. Gen. Genet. 162, 35–41 (1978). https://doi.org/10.1007/BF00333848

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