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  1.  48
    The evolution of life cycles with haploid and diploid phases.Barbara K. Mable & Sarah P. Otto - 1998 - Bioessays 20 (6):453-462.
    Sexual eukaryotic organisms are characterized by an alternation between haploid and diploid phases. In vascular plants and animals, somatic growth and development occur primarily in the diploid phase, with the haploid phase reduced to the gametic cells. In many other eukaryotes, however, growth and development occur in both phases, with substantial variability among organisms in the length of each phase of the life cycle. A number of theoretical models and experimental studies have shed light on factors that may influence life (...)
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  2.  9
    Evolution of sex: Using experimental genomics to select among competing theories.Nathaniel P. Sharp & Sarah P. Otto - 2016 - Bioessays 38 (8):751-757.
    Few topics have intrigued biologists as much as the evolution of sex. Understanding why sex persists despite its costs requires not just rigorous theoretical study, but also empirical data on related fundamental issues, including the nature of genetic variance for fitness, patterns of genetic interactions, and the dynamics of adaptation. The increasing feasibility of examining genomes in an experimental context is now shedding new light on these problems. Using this approach, McDonald et al. recently demonstrated that sex uncouples beneficial and (...)
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  3.  19
    On the evolution of recombination in haploids and diploids: II. Stochastic models.Aviv Bergman, Sarah P. Otto & Marcus W. Feldman - 1995 - Complexity 1 (2):49-57.
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  4.  16
    On the evolution of recombination in haploids and diploids: I. Deterministic models.Aviv Bergman, Sarah P. Otto & Marcus W. Feldman - 1995 - Complexity 1 (1):57-67.
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  5.  32
    On the evolution of recombination in haploids and diploids: I. Deterministic models.Aviv Bergman, Sarah P. Otto & Marcus W. Feldman - 1995 - Complexity 1 (1):57-67.
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  6.  28
    Liberating genetic variance through sex.Andrew D. Peters & Sarah P. Otto - 2003 - Bioessays 25 (6):533-537.
    Genetic variation in fitness is the fundamental prerequisite for adaptive evolutionary change. If there is no variation in survival and reproduction or if this variation has no genetic basis, then the composition of a population will not evolve over time. Consequently, the factors influencing genetic variation in fitness have received close attention from evolutionary biologists. One key factor is the mode of reproduction. Indeed, it has long been thought that sex enhances fitness variation and that this explains the ubiquity of (...)
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