Baggini, J. (2004). Making Sense: Philosophy behind the Headlines. Oxford University Press.
Cohen, A. (2016). Imbeciles: The Supreme Court, American Eugenics, and the Sterilization of CarrieBuck. Penguin Books.
Cook, L. M., Mani, G. S., and Varley, M. E., "Post-industrial melanism in the peppered moth," Science 231 (1986): 611–613.
Daly, M., and Wilson, M., "Evolutionary social psychology and family homicide," Science 242 (1988): 519–524.
Dawson, G. (2024). Monkey to Man: The Evolution of the March of Progress Image. Yale University [3]Press.
Okasha, S., "Biological Altruism," The Stanford Encyclopedia of Philosophy (2020); Zalta, E. N., ed. https://plato.stanford.edu/archives/sum2020/entries/altruism-biological.
Мэйнард Смит, Дж. Эволюция полового размножения. — Издательство «Мир», 1981.
Bach, J.-F., "The hygiene hypothesis in autoimmunity: The role of pathogens and commensals," Nature Reviews Immunology 18 (2018): 105–120.
Belinky, F., Babenko, V. N., Rogozin, I. B., and Koonin, E. V., "Purifying and positive selection in the evolution of stop codons," Scientific Reports 8 (2018): 9260.
Fan, S., Hansen, M. E. B., Lo, Y., and Tishkoff, S. A., "Going global by adapting local: A review of recent human adaptation," Science 354 (2016): 54–59.
Owen, M. J., Niemi, A.-K., Dimmock, D. P., Speziale, M., Nespeca, M., Chau, K. K., et al., "Rapid sequencing-based diagnosis of thiamine metabolism dysfunction syndrome," NewEnglandJournal of Medicine 384 (2021): 2159–2161.
Plomp, K. A., Viðarsdóttir, U. S., Weston, D. A., Dobney, K., and Collard, M., "The ancestral shape hypothesis: An evolutionary explanation for the occurrence of intervertebral disc herniation in humans," BMC Evolutionary Biology 15 (2015): 68. https://doi.org/10.1186/s12862–015–0336-y.
Rice, W. R. 2018. "The high abortion cost of human reproduction." bioRxiv 372193. https://doi.org/10.1101/372193.
Baym, M., Lieberman, T. D., Kelsic, E. D., Chait, R., Gross, R., Yelin, I., and Kishony, R., "Spatiotemporal microbial evolution on antibiotic landscapes," Science 353 (2016): 1147–1151.
Haig, D., "Genetic conflicts in human pregnancy," Quarterly Review of Biology 68 (1993): 495–532.
Lenski, R. E., "Experimental evolution and the dynamics of adaptation and genome evolution in microbial populations," ISME Journal 11 (2017): 2181–2194.
Manceau, M., Domingues, V. S., Mallarino, R., and Hoekstra, H. E., "The developmental role of Agouti in color pattern evolution," Science 331 (2011): 1062–1065.
Trivers, R. L., "Parent-offspring conflict," American Zoologist 14 (1974): 249–264.
Kimura, M. (1983). The Neutral Theory of Molecular Evolution. Cambridge University Press.
Ohta, T., and Gillespie, J. H., "Development of neutral and nearly neutral theories," Theoretical Population Biology 49 (1996): 128–142.
ENCODE Project Consortium, "An integrated encyclopedia of DNA elements in the human genome," Nature 489 (2012): 57–74.
Graur, D., "An upper limit on the functional fraction of the human genome," Genome Biologyand Evolution 9 (2017): 1880–1885.
Graur, D., Zheng, Y., Price, N., Azevedo, R. B., Zufall, R. A., and Elhaik, E., "On the immortality of television sets: 'Function' in the human genome according to the evolution-free gospel of ENCODE," Genome Biology and Evolution 5 (2013): 578–590.
Lynch, M., "The origins of eukaryotic gene structure," Molecular Biology and Evolution 23 (2006): 450–468.
Lynch, M. (2007). The Origins of Genome Architecture. Sinauer Associates, Inc.
Ponting. C. P., and Haerty, W., "Genome-wide analysis of human long noncoding RNAs: A provocative review," Annual Review of Genomics and HumanGenetics 23 (2022): 153–172.
Rands, C. M., Meader, S., Ponting, C. P., and Lunter, G., "8.2% of the human genome is constrained: Variation in rates of turnover across functional element classes in the human lineage," PLoS Genetics 10 (2014): e1004525.
Zhang, J., and Xu, C., "Gene product diversity: Adaptive or not?" Trends in Genetics 38 (2022): 1112–1122.
Allison, A. C., "Genetic control of resistance to human malaria," Current Opinion in Immunology 21 (2009): 499–505.
Cagan, A., Baez-Ortega, A., Brzozowska, N., Abascal, F., Coorens, T. H. H., Sanders, M. A., et al., "Somatic mutation rates scale with lifespan across mammals," Nature 604 (2022): 517–524.
Codoner, F. M., Daros, J.-A., Sole, R. V., and Elena, S. F., "The fittest versus the flattest: Experimental confirmation of the quasispecies effect with subviral pathogens," PLOS Pathogens 2 (2006): e136.
Galipeau, P. C., Oman, K. M., Paulson, T. G., Sanchez, C. A., Zhang, Q., Marty, J. A., et al., "NSAID use and somatic exomic mutations in Barrett's esophagus," Genome Medicine 10 (2018): 17. https://doi.org/10.1186/s13073–018–0520-y.
Horton, J. S., Flanagan., L. M., Jackson, R. W., Priest, N. K., and Taylor, T. B., "A mutational hotspot that determines highly repeatable evolution can be built and broken by silent genetic changes," Nature Communications 12 (2021): 6092.
Lynch, M., Ackerman, M. S., Gout, J.-F., Long, H., Sung, W., Thomas, W. K., and Foster, P. L., "Genetic drift, selection and the evolution of the mutation rate," Nature Reviews Genetics 17 (2016): 704–714.
Melamed, D., Nov, Y., Malik, A., Yakass, M. B., Bolotin, E., Shemer, R. et al., "De novo mutation rates at the single-mutation resolution in a human HBB gene region associated with adaptation and genetic disease," Genome Research 32 (2022): 488–498.
Pal, C., Macia, M. D., Oliver, A., Schachar, I., and Buckling, A., "Coevolution with viruses drives the evolution of bacterial mutation rates," Nature 450 (2007): 1079–1081.
Sprouffske, K., Aguilar-Rodriguez, J., Sniegowski, P., and Wagner, A., "High mutation rates limit evolutionary adaptation in Escherichia coli," PLoS Genetics 14 (2018): e1007324.
Wang, L., Sun, Y., Sun, X., Yu, L., Xue, L., He, Z. et al., "Repeat-induced point mutation in Neurospora crassa causes the highest known mutation rate and mutational burden of any cellular life," Genome Biology 21 (2020): 142. https://doi.org/10.1186/s13059–020–02060-w.
Wang, L., Ji, Y., Hu, Y., Hu, H., Jia, X., Jiang, M. et al., "The architecture of intra-organism mutation rate variation in plants," PLoS Biology 17 (2019): e3000191.
Wang, Y., and Obbard, D. J., "Experimental estimates of germline mutation rate in eukaryotes: A phylogenetic meta-analysis," Evolution Letters 7 (2023): 216–226.
Akera, T., Trimm, E., and Lampson, M. A., "Molecular strategies of meiotic cheating by selfish centromeres," Cell 178 (2019): 1132–1144.e10.
Amorim, C. E. G., Gao, Z., Baker, Z., Diesel, J. F., Simons, Y. B., Haque, I. S. et al., "The population genetics of human disease: The case of recessive, lethal mutations," PLoS Genetics 13 (2017): e1006915.
Cocquet, J., Ellis, P. J. I., Mahadevaiah, S. K., Affara, N. A., Vaiman, D., and Burgoyne, P. S., "A genetic basis for a postmeiotic X versus Y chromosome intragenomic conflict in the mouse," PLoS Genetics 8 (2012): e1002900.
Haeusler, M., Grunstra, N. D. S., Martin, R. D., Krenn, V. A., Fornai, C., and Webb, N. M., "The obstetrical dilemma hypothesis: There's life in the old dog yet," Biological Reviews 96 (2021): 2031–2057.
Haig, D., "The kinship theory of genomic imprinting," Annual Review of Ecology, Evolution, and Systematics 31 (2000): 9–32.
Hastings, I. M., "Reproductive compensation and human genetic disease," Genetical Research 77 (2001): 277–283.
Hurst, L. D., "Selfish centromeres and the wastefulness of human reproduction," PLoSBiology 20 (2022): e3001671. https://doi.org/10.1371/journal.pbio.3001671.
Moore, T., and Haig, D., "Genomic imprinting in mammalian development: A parental tug-of-war," Trends in Genetics 7 (1991): 45–49.
O'Brien, E. K., and Wolf, J. B., "The coadaptation theory for genomic imprinting," Evolution Letters 1 (2017): 49–59.
Caceres, E. F., and Hurst, L. D., "The evolution, impact and properties of exonic splice enhancers," Genome Biology 14 (2013): R143. https://doi.org/10.1186/gb-2013–14–12-r143.
Duret, L., and Galtier, N., "Biased gene conversion and the evolution of mammalian genomic landscapes," Annual Review of Genomics and HumanGenetics 10 (2009): 285–311. https://doi.org/10.1146/annurev-genom-082908–150001.
Hartfield, M., and Keightley, P. D., "Current hypotheses for the evolution of sex and recombination," Integrative Zoology 7 (2012): 192–209. https://doi.org/10.1111/j.1749–4877.2012.00284.x.
Ho, A. T., and Hurst, L. D., "Unusual mammalian usage of TGA stop codons reveals that sequence conservation need not imply purifying selection," PLoS Biology 20 (2022): e3001588. https://doi.org/10.1371/journal.pbio.3001588.
Lively, C. M., "Evidence from a New Zealand snail for the maintenance of sex by parasitism," Nature 328 (1987): 519–521. https://doi.org/10.1038/328519a0.
Morran, L. T., Schmidt, O. G., Gelarden, I. A., Parrish, R. C., II, and Lively, C. M., "Running with the red queen: Host-parasite coevolution selects for biparental sex," Science 333 (2011): 216–218. https://doi.org/10.1126/science.1206360.
Abdellaoui, A., Yengo, L., Verweij, K. J. H., and Visscher, P. M., "15 years of GWAS discovery: Realizing the promise," American Journal of HumanGenetics 110 (2023): 179–194.
Bulaklak, K., and Gersbach, C. A., "The once and future gene therapy," Nature Communications 11 (2020): 5820. https://doi.org/10.1038/s41467–020–19505–2.
Green, H. D., Merriel, S. W. D., Oram, R. A., Ruth, K. S., Tyrrell, J., Jones, S. E. et al., "Applying a genetic risk score for prostate cancer to men with lower urinary tract symptoms in primary care to predict prostate cancer diagnosis: A cohort study in the UK biobank," BritishJournal of Cancer 127 (2022): 1534–1539.
High, K. A., and Roncarolo, M. G., "Gene therapy," New England Journal of Medicine 381 (2019): 455–464.
Sanderson, E., Glymour, M. M., Holmes, M. V., Kang, H., Morrison, J., Munafo, M. R. et al., "Mendelian randomization," NatureReviewsMethodsPrimers 2 (2022): 6. https://doi.org/10.1038/s43586–021–00092–5.
Tulchinsky, T. H. (2018). "John Snow, Cholera, the Broad Street Pump; Waterborne Diseases Then and Now." In Case Studies in Public Health, 77–99. Elsevier Press.
Wray, N. R., Lin, T., Austin, J., McGrath, J. J., Hickie, I. B., Murray, G. K., and Visscher, P. M., "From basic science to clinical application of polygenic risk scores: A primer," JAMAPsychiatry 78 (2021): 101–109.
3. Генеральная прокуратура РФ признала Йельский университет нежелательной организацией на территории России.