Deleterious mutations, variable epistatic interactions, and the evolution of recombination.
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M W Feldman | M. Feldman | S. Otto | S P Otto
[1] K. Mather,et al. The Interrelations of Inversions, Heterosis and Recombination , 1938, The American Naturalist.
[2] M W Feldman,et al. Selection for linkage modification. I. Random mating populations. , 1972, Theoretical population biology.
[3] A. Kondrashov. Selection against harmful mutations in large sexual and asexual populations. , 1982, Genetical research.
[4] R. Punnett,et al. The Genetical Theory of Natural Selection , 1930, Nature.
[5] B. Charlesworth. Recombination modification in a fluctuating environment , 1976, Advances in Applied Probability.
[6] T Kibota,et al. Estimate of the genomic mutation rate deleterious to overall fitness in E. coli , 1996 .
[7] P. Keightley. The distribution of mutation effects on viability in Drosophila melanogaster. , 1994, Genetics.
[8] F B Christiansen,et al. Population genetic perspectives on the evolution of recombination. , 1996, Annual review of genetics.
[9] B. Charlesworth,et al. Unravelling the Evolutionary Advantage of Sex : a Commentary on ' Mutation–selection Balance and the Evolutionary Advantage of Sex and Recombination ' , 2022 .
[10] Marcus W. Feldman,et al. On the evolution of recombination in haploids and diploids: II. Stochastic models , 1995, Complex..
[11] M. Feldman,et al. Effects of cis-trans viability selection on some two-locus models. , 1995, Theoretical population biology.
[12] M. Feldman,et al. On the evolutionary effect of recombination. , 1970, Theoretical population biology.
[13] T. Dobzansky. Genetic structure of natural populations. , 1946, Year book - Carnegie Institution of Washington.
[14] M. Kimura,et al. The mutational load with epistatic gene interactions in fitness. , 1966, Genetics.
[15] A. Kondrashov,et al. Classification of hypotheses on the advantage of amphimixis. , 1993, The Journal of heredity.
[16] H. Muller. THE RELATION OF RECOMBINATION TO MUTATIONAL ADVANCE. , 1964, Mutation research.
[17] B. Charlesworth,et al. The effects of spontaneous mutation on quantitative traits. I. Variances and covariances of life history traits. , 1994, Genetics.
[18] H. Muller. Some Genetic Aspects of Sex , 1932, The American Naturalist.
[19] T MUKAI,et al. THE GENETIC STRUCTURE OF NATURAL POPULATIONS OF DROSOPHILA MELANOGASTER. I. SPONTANEOUS MUTATION RATE OF POLYGENES CONTROLLING VIABILITY. , 1964, Genetics.
[20] M. Whitlock,et al. MULTIPLE FITNESS PEAKS AND EPISTASIS , 1995 .
[21] F B Christiansen,et al. Evolution of recombination in a constant environment. , 1980, Proceedings of the National Academy of Sciences of the United States of America.
[22] T. Mukai. The Genetic Structure of Natural Populations of DROSOPHILA MELANOGASTER. VII Synergistic Interaction of Spontaneous Mutant Polygenes Controlling Viability. , 1969, Genetics.
[23] Marcus W. Feldman,et al. On the evolution of recombination in haploids and diploids: I. Deterministic models , 1995, Complex..
[24] A. Dickson. On Evolution , 1884, Science.
[25] B. Charlesworth. The evolution of sex and recombination. , 1989, Trends in ecology & evolution.
[26] B. Charlesworth,et al. Genetic loads and estimates of mutation rates in highly inbred plant populations , 1990, Nature.
[27] N. Barton,et al. A general model for the evolution of recombination. , 1995, Genetical research.
[28] M. Kimura,et al. Evolution in Sexual and Asexual Populations , 1965, The American Naturalist.
[29] J. Crow,et al. A molecular approach to estimating the human deleterious mutation rate , 1993, Human mutation.
[30] A. Clark,et al. Mutation-selection balance and the evolution of senescence , 1994 .
[31] B. Charlesworth,et al. The evolution of sex and recombination in a varying environment. , 1993, The Journal of heredity.
[32] J. McGregor,et al. Application of method of small parameters to multi-niche population genetic models. , 1972, Theoretical population biology.
[33] R. Michod,et al. The Evolution of sex : an examination of current ideas , 1988 .
[34] M. Nei,et al. Modification of linkage intensity by natural selection. , 1967, Genetics.
[35] F. R. Gantmakher. The Theory of Matrices , 1984 .
[36] A. Kondrashov. Deleterious mutations as an evolutionary factor. 1. The advantage of recombination. , 1984, Genetical research.
[37] W. Hamilton. Sex versus non-sex versus parasite , 1980 .
[38] J. Crow,et al. Mutation rate and dominance of genes affecting viability in Drosophila melanogaster. , 1972, Genetics.
[39] Peter Lancaster,et al. The theory of matrices , 1969 .
[40] A. Kondrashov. Deleterious mutations and the evolution of sexual reproduction , 1988, Nature.
[41] James F. Crow,et al. Genetic Loads and the Cost of Natural Selection , 1970 .
[42] B. Charlesworth,et al. Recombination load associated with selection for increased recombination. , 1996, Genetical research.