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Список литературы

1 Марков А. В. и др. 2015. Материнский эффект маскирует адаптацию к неблагоприятным условиям и затрудняет дивергенцию у Drosophila melanogaster // Журнал общей биологии. Т. 76. С. 429–437.

2 Трут Л. Н. 2007. Обретет ли человек нового друга? // Природа. № 6. С. 11–17.

3 Abbot P. et al. 2011. Inclusive fitness theory and eusociality // Nature. V. 471. P. e1–e4.

4 Alcaide M. et al. 2014. Genomic divergence in a ring species complex // Nature. V. 511. P. 83–85.

5 Alexander R. 1974. The evolution of social behavior // Annu Rev Ecol Syst. V. 5. P. 325–383.

6 Baker C. R. et al. 2013. Following gene duplication, paralog interference constrains transcriptional circuit evolution // Science. V. 342. P. 104–108.

7 Beauchamp J. P. 2016. Genetic evidence for natural selection in humans in the contemporary United States // Proc Natl Acad Sci USA. V. 113. P. 7774–7779.

8 Brawand D. et al. 2014. The genomic substrate for adaptive radiation in African cichlid fish // Nature. V. 513. P. 375–381.

9 Buffington S. A. et al. 2016. Microbial reconstitution reverses maternal diet-induced social and synaptic deficits in offspring // Cell. V. 165. P. 1762–1775.

10 Camperio-Ciani A. et al. 2004. Evidence for maternally inherited factors favouring male homosexuality and promoting female fecundity // Proc Biol Sci. V. 271. P. 2217–2221.

11 Carazo P. et al. 2014. Within-group male relatedness reduces harm to females in Drosophila // Nature. V. 505. P. 672–675.

12 Coleman S. W. et al. 2009. Reproductive isolation, reproductive mode, and sexual selection: empirical tests of the viviparity-driven conflict hypothesis // Am Nat. V. 173. P. 291–303.

13 Condon M. A. et al. 2014. Lethal interactions between parasites and prey increase niche diversity in a tropical community // Science. V. 343. P. 1240–1244.

14 Corral-López A. et al. 2017. Female brain size affects the assessment of male attractiveness during mate choice // Sci Adv. V. 3. P. e1601990.

15 Crabtree G. R. 2013. Our fragile intellect. Part II // Trends Genet. V. 29. P. 3–5.

16 Daly M., Wilson V. 1988. Evolutionary social psychology and family homicide // Science. V. 242. P. 519–521.

17 Dannemann M. et al. 2016. Introgression of Neandertal- and Denisovan-like haplotypes contributes to adaptive variation in human Toll-like receptors // Am J Hum Genet. V. 98. P. 22–33.

18 Deschamps M. et al. 2016. Genomic signatures of selective pressures and introgression from archaic hominins at human innate immunity genes // Am J Hum Genet. V. 98. P. 5–21.

19 Diss G. et al. 2017. Gene duplication can impart fragility, not robustness, in the yeast protein interaction network // Science. V. 355. P. 630–634.

20 Endler J. A. 1980. Natural selection on color patterns in Poecilia reticulata // Evolution. V. 34. P. 76–91.

21 Fuentes I. et al. 2014. Horizontal genome transfer as an asexual path to the formation of new species // Nature. 2014. V. 511. P. 232–235.

22 Gasparini C. et al. 2012. Cross-generational effects of sexual harassment on female fitness in the guppy // Evolution. V. 66. P. 532–543.

23 Ghalambor C. K. et al. 2015. Non-adaptive plasticity potentiates rapid adaptive evolution of gene expression in nature // Nature. V. 525. P. 372–375.

24 Gibson A. K. et al. 2017. The two-fold cost of sex: experimental evidence from a natural system // Evol Lett. 2017. V. 1. P. 6–15.

25 Good B. H. et al. 2017. The dynamics of molecular evolution over 60,000 generations // Nature. V. 551. P. 45–50.

26 Grant P. R., Grant B. R. 2006. Evolution of character displacement in Darwin’s finches // Science. V. 313. P. 224–226.

27 Grant P. R., Grant B. R. 2014. Speciation undone // Nature. V. 507. P. 178–179.

28 Gross J., Bhattacharya D. 2010. Uniting sex and eukaryote origins in an emerging oxygenic world // Biol Direct. V. 5. P. 53.

29 Hamer D., Sirota L. 2000. Beware the chopsticks gene // Mol Psychiatry. V. 5. P. 11–13.

30 Harris K. 2015. Evidence for recent, population-specific evolution of the human mutation rate // Proc Natl Acad Sci USA. V. 112. P. 3439–3444.

31 Hart S. A. et al. 2013. Expanding the environment: gene × school-level SES interaction on reading comprehension // J Child Psychol Psychiatry. V. 54. P. 1047–1055.

32 Highton R. 1998. Is Ensatina eschscholtzii a ring-species? // Herpetologica. V. 54. P. 254–278.

33 Hooper D. M., Price T. D. 2015. Rates of karyotypic evolution in Estrildid finches differ between island and continental clades // Evolution. V. 69. P. 890–903.

34 Hooper D. M., Price T. D. 2017. Chromosomal inversion differences correlate with range overlap in passerine birds // Nat Ecol Evol. V. 1. P. 1526–1534.

35 Hsiao E. Y. et al. 2013. Microbiota modulate behavioral and physiological abnormalities associated with neurodevelopmental disorders // Cell. V. 155. P. 1451–1463.

36 Inoue Y. et al. 2017. Evolution of the wheat blast fungus through functional losses in a host specificity determinant // Science. V. 357. P. 80–83.

37 Johnston S. E. et al. 2013. Life history trade-offs at a single locus maintain sexually selected genetic variation // Nature. V. 502. P. 93–95.

38 Jónsson H. et al. 2017. Parental influence on human germline de novo mutations in 1,548 trios from Iceland // Nature. V. 549. P. 519–522.

39 Keagy J. et al. 2009. Male satin bowerbird problem-solving ability predicts mating success // Anim Behav. V. 78. P. 809–817.

40 Kleindorfer S. et al. 2014. Species collapse via hybridization in Darwin’s tree finches // Am Nat. V. 183. P. 325–341.

41 Kong A. et al. 2017. Selection against variants in the genome associated with educational attainment // Proc Natl Acad Sci USA. V. 114. P. e727–e732.

42 Kopelman P. 2000. Obesity as a medical problem // Nature. V. 404. P. 635–643.

43 Krakowiak P. et al. 2012. Maternal metabolic conditions and risk for autism and other neurodevelopmental disorders // Pediatrics. V. 129. P. e1121–e1128.

44 Kulmuni J., Pamilo P. 2014. Introgression in hybrid ants is favored in females but selected against in males // Proc Natl Acad Sci USA. V. 111. P. 12805–12810.

45 Lack D. 1947. Darwin’s finches. Cambridge University Press.

46 Lamichhaney S. et al. 2016. A beak size locus in Darwin’s finches facilitated character displacement during a drought // Science. V. 352. P. 470–474.

47 Lamichhaney S. et al. 2018. Rapid hybrid speciation in Darwin’s finches // Science. V. 359. P. 224–228.

48 Langergraber K. E. et al. 2012. Generation times in wild chimpanzees and gorillas suggest earlier divergence times in great ape and human evolution // Proc Natl Acad Sci USA. V. 109. P. 15716–15721.

49 Lee S.-G. et al. 2017. Age-associated molecular changes are deleterious and may modulate life span through diet // Sci Adv. V. 3. P. e1601833.

50 Levy S. F. et al. 2015. Quantitative evolutionary dynamics using high-resolution lineage tracking // Nature. V. 519. P. 181–186.

51 Liebers D. et al. 2004. The herring gull complex is not a ring species // Proc Biol Sci. V. 271. P. 893–901.

52 Lukas D., Huchard E. 2014. The evolution of infanticide by males in mammalian societies // Science. V. 346. P. 841–844.

53 Łukasiewicz A. et al. 2017. Kin selection promotes female productivity and cooperation between the sexes // Sci Adv. V. 3. P. e1602262.

54 Lumley A. J. et al. 2015. Sexual selection protects against extinction // Nature. V. 522. P. 470–473.

55 Lynch M. 2010a. Evolution of the mutation rate // Trends Genet. V. 26. P. 345–352.

56 Lynch M. 2010b. Rate, molecular spectrum, and consequences of human mutation // Proc Natl Acad Sci USA. V. 107. P. 961–968.

57 Lynn R. 1999. New evidence for dysgenic fertility for intelligence in the United States // Soc Biol. V. 46. P. 146–153.

58 Makarova K. S. et al. 2005. Ancestral paralogs and pseudoparalogs and their role in the emergence of the eukaryotic cell // Nucleic Acids Res. V. 33. P. 4626–4638.

59 Markov A. V., Kaznacheev I. S. 2016. Evolutionary consequences of polyploidy in prokaryotes and the origin of mitosis and meiosis // Biol Direct. V. 11. P. 28.

60 Martins M. J. F. et al. 2018. High male sexual investment as a driver of extinction in fossil ostracods // Nature. V. 556. P. 366–369.

61 McDonald M. J. et al. 2016. Sex speeds adaptation by altering the dynamics of molecular evolution // Nature. V. 531. P. 233–236.

62 Meirmans S. et al. 2012. The costs of sex: facing real-world complexities // Q Rev Biol. V. 87. P. 19–40.

63 Nadeau N. J. et al. 2016. The gene cortex controls mimicry and crypsis in butterflies and moths // Nature. V. 534. P. 106–110.

64 Nowak M. A. et al. 2010. The evolution of eusociality // Nature. V. 466. P. 1057–1062.

65 Okbay A. et al. 2016. Genome-wide association study identifies 74 loci associated with educational attainment // Nature. V. 533. P. 539–542.

66 Ostrovsky A. N. et al. 2015. Matrotrophy and placentation in invertebrates: a new paradigm // Biol Rev Camb Philos Soc. V. 91. P. 673–711.

67 Ozawa H. 2013. The history of sexual dimorphism in Ostracoda (Arthropoda, Crustacea) since the Palaeozoic // Sexual Dimorphism. InTech open.

68 Panchin A. Y. et al. 2014. Midichlorians – the biomeme hypothesis: is there a microbial component to religious rituals? // Biol Direct. V. 9. P. 14.

69 Penz O. K. et al. 2015. Protracted brain development in a rodent model of extreme longevity // Sci Rep. V. 5. P. 11592.

70 Podgornaia A. I., Laub M. T. 2015. Pervasive degeneracy and epistasis in a protein-protein interface // Science. V. 347. P. 673–677.

71 Poduri A. et al. 2013. Somatic mutation, genomic variation, and neurological disease // Science. V. 341. P. 1237758.

72 Pollux B. J. A. et al. 2014. The evolution of the placenta drives a shift in sexual selection in livebearing fish // Nature. V. 513. P. 233–236.

73 Poutahidis T. et al. 2013. Microbial symbionts accelerate wound healing via the neuropeptide hormone oxytocin // PLoS One. V. 8. P. e78898.

74 Reznick D. N. et al. 2002. Independent origins and rapid evolution of the placenta in the fish genus Poeciliopsis // Science. V. 298. P. 1018–1020.

75 Rietveld C. A. et al. 2013. GWAS of 126,559 individuals identifies genetic variants associated with educational attainment // Science. V. 340. P. 1467–1471.

76 Roberts E. K. et al. 2012. A Bruce effect in wild geladas // Science. V. 335. P. 1222–1225.

77 Romiguier J. et al. 2014. Comparative population genomics in animals uncovers the determinants of genetic diversity // Nature. V. 515. P. 261–263.

78 Saha S. et al. 2009. Advanced paternal age is associated with impaired neurocognitive outcomes during infancy and childhood // PLoS Med. V. 6. P. e40.

79 Sankararaman S. et al. 2014. The genomic landscape of Neanderthal ancestry in present-day humans // Nature. V. 507. P. 354–357.

80 Scally A., Durbin R. 2012. Revising the human mutation rate: implications for understanding human evolution // Nat Rev Genet. V. 13. P. 745–753.

81 Shendure J., Akey J. M. 2015. The origins, determinants, and consequences of human mutations // Science. V. 349. P. 1478–1483.

82 Shohet A. J., Watt P. J. 2009. Female guppies Poecilia reticulata prefer males that can learn fast // J Fish Biol. V. 75. P. 1323–1330.

83 Simonti C. N. et al. 2016. The phenotypic legacy of admixture between modern humans and Neanderthals // Science. V. 351. P. 737–741.

84 Skirbekk V. 2008. Fertility trends by social status // Demogr Res. V. 18. P. 145–180.

85 Skulachev V. P. et al. 2017. Neoteny, prolongation of youth: from naked mole rats to “naked apes” (humans) // Physiol Rev. V. 97. P. 699–720.

86 Sohail M. et al. 2017. Negative selection in humans and fruit flies involves synergistic epistasis // Science. 2017. V. 356. P. 539–542.

87 Somel M. et al. 2009. Transcriptional neoteny in the human brain // Proc Natl Acad Sci USA. V. 106. P. 5743–5748.

88 Spaans S. K. et al. 2015. The chromosome copy number of the hyperthermophilic archaeon Thermococcus kodakarensis KOD1 // Extremophiles. V. 19. P. 741–750.

89 Starita L. M. et al. 2015. Massively parallel functional analysis of BRCARING domain variants // Genetics. V. 200. P. 413–422.

90 Tan C. K. W. et al. 2013. Sex-specific responses to sexual familiarity, and the role of olfaction in Drosophila // Proc Biol Sci. V. 280. P. 20131691.

91 Tilszer M. et al. 2006. Evolution under relaxed sexual conflict in the bulb mite Rhizoglyphus robini // Evolution. V. 60. P. 1868–1873.

92 Turkheimer E. et al. 2003. Socioeconomic status modifies heritability of IQ in young children // Psychol Sci. V. 14. P. 623–628.

93 Van’t Hof A. E. et al. 2016. The industrial melanism mutation in British peppered moths is a transposable element // Nature. V. 534. P. 102–105.

94 Venn O. et al. 2014. Strong male bias drives germline mutation in chimpanzees // Science. V. 344. P. 1272–1275.

95 Vlad D. et al. 2014. Leaf shape evolution through duplication, regulatory diversification, and loss of a homeobox gene // Science. V. 343. P. 780–783.

96 Watanabe S. et al. 2016. Color polymorphism in an aphid is maintained by attending ants // Sci Adv. V. 2. P. e1600606.

97 Weekes-Shackelford V. A., Shackelford T. K. 2004. Methods of filicide: stepparents and genetic parents kill differently // Violence Vict. V. 19. P. 75–81.

98 Wilkins A. S., Holliday R. 2009. The evolution of meiosis from mitosis // Genetics. V. 181. P. 3–12.

99 Williams G. C. 1957. Pleiotropy, natural selection, and the evolution of senescence // Evolution. V. 11. P. 398–411.

100 Wiser M. J. et al. 2013. Long-term dynamics of adaptation in asexual populations // Science. V. 342. P. 1364–1367.

101 Woodley of Menie M. A. 2015. How fragile is our intellect? Estimating losses in general intelligence due to both selection and mutation accumulation // Pers Indiv Differ. V. 75. P. 80–84.

102 Zeh D. W., Zeh J. A. 2000. Reproductive mode and speciation: the viviparity-driven conflict hypothesis // Bioessays. V. 22. P. 938–946.

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