A mechanism for gene conversion in fungi

Genetical Research - Tập 5 Số 2 - Trang 282-304 - 1964
Robin Holliday1
1John Innes Institute, Bayfordbury, Hertford, Herts.

Tóm tắt

A mechanism for gene conversion is proposed which overcomes many of the difficulties that any copy choice model encounters. It is suggested that along with general genetic pairing of homologous genomes at meiosis, effective pairing over short regions of the genetic material occurs at the molecular level by the separation of the strands of the DNA double helices, followed by the annealing of strands from two homologous chromatids. If the annealed region happens to span a heterozygous site, mispairing of bases will occur. Such a situation may be analogous to that in DNA which is damaged by mutagens; the same or similar repair mechanisms may operate, and these, by adjusting the base sequences in order to restore normal base pairing, would bring about gene conversion in the absence of any genetic replication. The model indicates how precise breakage and rejoining of chromatids could occur in the vicinity of the conversion, so that conversion would frequently be accompanied by the recombination of outside markers. The model also proposes that the distance between two mutant sites on a fine structure map depends not so much on the frequency of a recombinational event occurring between them, but rather on the degree of inhibition of the processes of genetic pairing by the mutants themselves.The model will explain almost all the data in a formal way, and it has the advantage over copy choice mechanisms for gene conversion in (1) being compatible with semi-conservative replication of DNA, (2) not invoking DNA synthesis during or after genetic pairing, (3) providing a molecular mechanism for close specific pairing, (4) making it unnecessary to postulate sister strand exchange or a process akin to this, (5) suggesting why rates of gene conversion in opposite directions are sometimes unequal and (6) providing an explanation of the clustering of mutant sites, a basis formap expansionand for the apparently capricious departure of fine structure maps from additivity. Although the model proposed is a general rather than a specific one, it suggests that the process of conversion and intragenic recombination is more complex than is usually believed, since it depends on several interacting factors. Nevertheless, it is hoped that the introduction of a model with this complexity will help to stimulate specific experiments, and that these will provide definitive information which would never be obtained if simpler models of conversion and intragenic recombination were believed to explain the genetic data sufficiently well.

Từ khóa


Tài liệu tham khảo

10.1073/pnas.47.6.857

10.1038/1991034a0

Tessman, 1963, Genetic ultrafine structure of the T4r II region. (Abstr.), Proc. XI Int. Congr. Genet., 1, 10

10.1101/SQB.1958.023.01.019

10.1002/j.1537-2197.1962.tb14999.x

10.1038/1911125b0

10.1101/SQB.1958.023.01.008

Rizet, 1964, Recombination within one locus of Ascobolus immersus, Proc. XI Int. Congr. Genet., 2

Fincham, 1963, Fungal Genetics

10.1038/hdy.1963.25

Roman, 1958, Sur les recombinaisons non reciproques chez Saccharomyces cereviseae et sur les problèmes posés par ces phenomènes, Ann. Genet., 1, 11

Ravin, 1962, Genetic mapping of DNA: influence of the mutated configuration on the frequency of recombination along the length of the molecule, Genetics, 47, 1369, 10.1093/genetics/47.10.1369

10.1099/00221287-24-3-335

Edgar, 1962, Mapping experiments with r mutants of bacteriophate T4D, Genetics, 47, 179, 10.1093/genetics/47.2.179

Putrament, 1963, Mitotic recombination within the paba-1 region of Aspergillus nidulans. (Abstr.), Proc. 11th Int. Congr. Genet., 1, 14

Balbinder, 1962, The fine structure of the loci try C and try D of Salmonella typhimurium. II. Studies of reversion patterns and the behaviour of specific alleles during recombination, Genetics, 47, 545, 10.1093/genetics/47.5.545

10.1007/BF01535681

Nelson, 1962, The waxy locus in maize, I. Intra locus recombination frequency estimates by pollen and by conventional analyses, Genetics, 47, 737, 10.1093/genetics/47.6.737

10.1073/pnas.45.7.1016

Margolin, 1963, Genetic fine structure of the leucine operon in Salmonella, Genetics, 48, 441, 10.1093/genetics/48.3.441

Murray, 1963, Polarized recombination and fine structure within the me-2 gene of Neurospora crassa, Genetics, 48, 1163, 10.1093/genetics/48.9.1163

Ishikawa, 1962, Genetic studies of ad-8 mutants in Neurospora crassa. I. Genetic fine structure of the ad-8 locus, Genetics, 47, 1147, 10.1093/genetics/47.9.1147

Holliday, 1964, The induction of mitotic recombination by mitomycin C in Ustilago and Saccharomyces, Genetics, 10.1093/genetics/50.3.323

10.1099/00221287-22-2-323

10.1073/pnas.47.6.869

Leupold, 1961, Intragene Rekombination und allele Komplementierung. Arch. Klaus- Stift, VererbForsch, 36, 89

Pontecorvo, 1958, Trends in Genetic Analysis

10.1073/pnas.42.4.189

10.1101/SQB.1958.023.01.016

10.1073/pnas.47.3.403

10.1073/pnas.46.3.311

Giles, 1958, Mutations at specific loci in Neurospora, Proc. X Int. Congr. Genet., 1, 261

10.1101/SQB.1958.023.01.006

10.1073/pnas.50.2.372

10.1017/S0016672300003323

10.1126/science.134.3480.668

10.1007/BF02982949

10.1016/S0065-2660(08)60290-4

10.1073/pnas.41.4.215

10.1017/S0016672300035084

10.1038/hdy.1955.37

Pritchard, 1960, The bearing of recombination analysis at high resolution on genetic fine structure in Aspergillus nidulans and the mechanism of recombination in higher organisms, Symp. Soc. gen. Microbiol., 10, 155

10.1017/S0016672300000033

10.1101/SQB.1956.021.01.015

Roman, 1963, Methodology in Basic Genetics, 209

10.1017/S0016672300000720

10.1017/S0016672300003116

10.1073/pnas.49.5.589

10.1017/S0016672300003384

Sobels, 1963, Repair from Genetic Radiation Damage

Stadler, 1963, Recombination of allelic cysteine mutants in Neurospora, Genetica, 48, 1323, 10.1093/genetics/48.10.1323

Case, 1963, Methodology in Basic Genetics, 221