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Influence of non-lethal doses of radiation on allelic recombination in Chlamydomonas reinhardi

Published online by Cambridge University Press:  14 April 2009

C. W. Lawrence
Affiliation:
Wantage Research Laboratory (A.E.R.E.), Wantage, Berks.
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The influence on allelic recombination of non-lethal doses of gamma radiation delivered at different stages during meiosis has been determined and the data compared with previous results concerning gene recombination. Both kinds of recombination are influenced at only two, probably the same two, meiotic stages. During the first sensitive stage, probably in preleptotene, the frequency of allelic recombination is increased, but that of gene recombination decreased. The frequency of both is increased during the second sensitive stage, which is probably in pachytene.

Type
Short Papers
Copyright
Copyright © Cambridge University Press 1967

References

REFERENCES

Case, M. E. & Giles, N. H. (1958). Recombination mechanisms at the pan-2 locus in Neurospora crassa. Cold Spring Harb. Symp. quant. Biol. 23, 119135.CrossRefGoogle ScholarPubMed
Catcheside, D. G., Jessop, A. P. & Smith, B. R. (1964). Genetic controls of allelic recombination in Neurospora. Nature, Lond. 202, 12421243.CrossRefGoogle ScholarPubMed
Davies, D. R. & Lawrence, C. W. (1966). The mechanism of recombination in Chlamydomonas reinhardi. II. The influence of inhibitors of DNA synthesis on intergenic recombination. Mut. Res. (in press).Google Scholar
Ebersold, W. T., Levine, R. P., Levine, E. E. & Olmsted, M. A. (1962). Linkage maps in Chlamydomonas reinhardi. Genetics, 47, 531543.CrossRefGoogle ScholarPubMed
Freese, E. (1957). The correlation effect for a histidine locus of Neurospora crassa. Genetics, 42, 671684.CrossRefGoogle ScholarPubMed
Lawrence, C. W. (1961 a). The effect of the irradiation of different stages in microsporo-genesis on chiasma frequency. Heredity, Lond. 16, 8389.CrossRefGoogle Scholar
Lawrence, C. W. (1961 b). The effect of radiation on chiasma formation in Tradescantia. Radiat. Bot. 1, 9296.CrossRefGoogle Scholar
Lawrence, C. W. (1965). Influence of non-lethal doses of radiation on recombination in Chlamydomonas reinhardi. Nature, Lond. 206, 789791.CrossRefGoogle ScholarPubMed
Lawrence, C. W. & Davies, D. R. (1966). The mechanism of recombination in Chlamydomonas reinhardi. I. The influence of inhibitors of protein synthesis on intergenic recombination. Mut. Res. (in press).Google Scholar
Lissouba, P., Mousseau, J., Rizet, G. & Rossignol, J. L. (1962). Fine structure of genes in the Ascomycete Ascobolus immersus. Adv. Genet. 11, 343380.CrossRefGoogle Scholar
Mitchell, H. K. (1957). Crossing-over and gene conversion in Neurospora. In The Chemical Basis of Heredity (McElroy, W. D. & Glass, B., eds.), pp. 94113. Baltimore: The Johns Hopkins Press.Google Scholar
Mitchell, M. B. (1960). Evidence of non-random distribution of ascus classes in fruiting bodies of Neurospora crassa. Genetics, 45, 12451251.CrossRefGoogle ScholarPubMed
Pritchard, R. H. (1960). Localized negative interference and its bearing on models of gene recombination. Genet. Res. 1, 124.CrossRefGoogle Scholar
Sherman, F. & Roman, H. (1963). Evidence for two types of allelic recombination in yeast. Genetics, 48, 255261.CrossRefGoogle ScholarPubMed
Stadler, D. R. & Towe, A. M. (1963). Recombination of allelic cysteine mutants in Neurospora. Genetics, 48, 13231344.CrossRefGoogle ScholarPubMed
Whitehouse, H. L. K. (1963). A theory of crossing-over by means of hybrid deoxyribonucleic acid. Nature, Lond. 199, 10341040.CrossRefGoogle ScholarPubMed
Winge, Ø. (1955). On interallelic crossing-over. Heredity, Lond. 9, 373384.CrossRefGoogle Scholar