Гены, эгоизм и сила сотрудничества: Эволюция как командная игра - Джонатан Силвертаун. Страница 58


О книге
Martin, “Physiology, Anaerobes, and the Origin of Mitosing Cells 50 Years On”, Journal of Theoretical Biology 434 (2017): 2–10.

279

Audrey M. Shiflett and Patricia J. Johnson, “Mitochondrion-related Organelles in Eukaryotic Protists”, Annual Review of Microbiology 64 (2010): 409–429.

280

Ashley P. Gumsley et al., “Timing and Tempo of the Great Oxidation Event”, Proceedings of the National Academy of Sciences 114 (2017): 1811–1816.

281

Daniel B. Mills et al., “Eukaryogenesis and Oxygen in Earth History”, Nature Ecology & Evolution 6 (2022): 520–532.

282

William F. Martin, Markus Mentel, and Aloysius G. M. Tielens, Mitochondria and Anaerobic Energy Metabolism in Eukaryotes: Biochemistry and Evolution (Berlin: De Gruyter, 2020).

283

Philip A. Cohen and Robin B. Kodner, “The Earliest History of Eukaryotic Life: Uncovering an Evolutionary Story Through the Integration of Biological and Geological Data”, Trends in Ecology & Evolution 37 (2022): 246–256.

284

Dirk Speijer, “Eukaryotes Were Shaped by Oxygen”, Nature Ecology and Evolution 6 (2022): 1242.

285

Ross Horn, Kapuganti Jagadis Gupta, and Nicola Colombo, “Mitochondrion Role in Molecular Basis of Cytoplasmic Male Sterility”, Mitochondrion 19, pt. B (2014): 198–205.

286

Antoine Dornier and Mathilde Dufay, “How Selfing, Inbreeding Depression, and Pollen Limitation Impact Nuclear-Cytoplasmic Gynodioecy: A Model”, Evolution 67 (2013): 2674–2687.

287

Justin C. Havird et al., “Selfish Mitonuclear Conflict”, Current Biology 29 (2019): R496–R511.

288

Любое сходство с последствиями Брекзита для британской экономики – чистое совпадение.

289

Andrew J. Roger, Edward Susko, and Michelle M. Leger, “Evolution: Reconstructing the Timeline of Eukaryogenesis”, Current Biology 31 (2021): R193–R196.

290

Jana Jablonska and Dan S. Tawfik, “The Evolution of Oxygen-utilizing Enzymes Suggests Early Biosphere Oxygenation”, Nature Ecology & Evolution 5 (2021): 442–448.

291

Tanai Oliver et al., “Time-resolved Comparative Molecular Evolution of Oxygenic Photosynthesis”, Biochimica Et Biophysica Acta-Bioenergetics 1862 (2021), https://doi.org/10.1016/j.bbabio.2021.148400.

292

Rochelle M. Soo et al., “On the Origins of Oxygenic Photosynthesis and Aerobic Respiration in Cyanobacteria”, Science 355 (2017): 1436–1439.

293

Jason Raymond et al., “Whole-genome Analysis of Photosynthetic Prokaryotes”, Science 298 (2002): 1616–1620.

294

Patricia Sánchez-Baracaldo and Tanai Cardona, “On the Origin of Oxygenic Photosynthesis and Cyanobacteria”, New Phytologist (2019), https://doi.org/10.1111/nph.16249.

295

Существует одно недавно обнаруженное исключение, называемое Paulinella. О нем чуть позже.

296

Timothy M. Gibson et al., “Precise Age of Bangiomorpha pubescens Dates the Origin of Eukaryotic Photosynthesis”, Geology 46 (2018): 135–138.

297

Eva C. M. Nowack and Andreas P. M. Weber, “Genomics-informed Insights into Endosymbiotic Organelle Evolution in Photosynthetic Eukaryotes”, Annual Review of Plant Biology 69 (2018): 51–84.

298

Gregory S. Gavelis and Gillian H. Gile, “How Did Cyanobacteria First Embark on the Path to Becoming Plastids? Lessons from Protist Symbioses”, FEMS Microbiology Letters 365 (2018), https://doi.org/10.1093/femsle/fny209.

299

Patricia Sánchez-Baracaldo et al., “Early Photosynthetic Eukaryotes Inhabited Low-salinity Habitats”, Proceedings of the National Academy of Sciences 114 (2017): E7737–E7745.

300

William B. Sanders, “The Photoaerogens: Algae and Plants Reunited Conceptually”, American Journal of Botany 109 (2022): 363–365.

301

Betsey Dexter Dyer, A Field Guide to Bacteria (Ithaca, NY: Cornell University Press, 2003).

302

Francis Bunker et al., Seaweeds of Britain and Ireland (Plympton St Maurice, Plymouth: Wild Nature Press, 2017).

303

Jan F. H. Strassert et al., “A Molecular Timescale for Eukaryote Evolution with Implications for the Origin of Red Algal-derived Plastids”, Nature Communications 12 (2021), https://doi.org/10.1038/s41467-021-22044-z.

304

Lenore Macorano and Eva C. M. Nowack, “Paulinella chromatophora”, Current Biology 31 (2021): R1024–R1026.

305

Frederick L. Schuster, “Cultivation of Pathogenic and Opportunistic Free-living Amebas”, Clinical Microbiology Reviews 15 (2002): 342–354.

306

Timothy G. Stephens et al., “Why Is Primary Endosymbiosis So Rare?” New Phytologist 231 (2021): 1693–1699.

307

Shannon J. Sibbald and John M. Archibald, “Genomic Insights into Plastid Evolution”, Genome Biology and Evolution 12 (2020): 978–990.

308

Ross F. Waller and Luděk Kořený, “Plastid Complexity in Dinoflagellates: A Picture of Gains, Losses, Replacements and Revisions”, in Secondary Endosymbioses, ed. Yoshihisa Hirakawa (2017), 105–143.

309

Lilla Hadariová et al., “Reductive Evolution of Chloroplasts in Non-photosynthetic Plants, Algae and Protists”, Current Genetics 64 (2018): 365–387.

310

Eric D. Salomaki and Christopher E. Lane, “Are All Red Algal Parasites Cut from the Same Cloth?” Acta Societatis Botanicorum Poloniae 83 (2014): 369–375.

311

Jan Janouškovec et al., “A Common Red Algal Origin of the Apicomplexan, Dinoflagellate, and Heterokont Plastids”, Proceedings of the National Academy of Sciences 107 (2010): 10949–10954.

312

Matteo Biddau and Lilach Sheiner, “Targeting the Apicoplast in Malaria”, Biochemical Society Transactions 47 (2019): 973–983.

313

William Martin et al., “Evolutionary Analysis of Arabidopsis, Cyanobacterial, and Chloroplast Genomes Reveals Plastid Phylogeny and Thousands of Cyanobacterial Genes in the Nucleus”, Proceedings of the National Academy of Sciences 99 (2002): 12246–12251.

314

Fabien Burki et al., “The New Tree of Eukaryotes”, Trends in Ecology & Evolution 35 (2020): 43–55.

315

Martin E. Boraas, Deborah B. Seale, and Joseph E. Boxhorn, “Phagotrophy by a Flagellate Selects for Colonial Prey: A Possible Origin of Multicellularity”, Evolutionary Ecology 12 (1998): 153–164.

316

Roberta M. Fisher, Thomas Bell, and Stuart A. West, “Multicellular Group Formation in Response to Predators in the Alga Chlorella vulgaris”, Journal of Evolutionary Biology 29 (2016): 551–559.

317

Richard K. Grosberg and Richard R. Strathmann, “The Evolution of Multicellularity: A Minor Major Transition?” Annual Review of Ecology Evolution and Systematics 38 (2007): 621–654.

318

James Umen and Matthew D. Herron, “Green Algal Models for Multicellularity”, Annual Review of Genetics 55 (2021): 603–632.

319

Steven G. Konig and Aurora M. Nedelcu, “The Genetic Basis for the Evolution of Soma: Mechanistic Evidence for the Co-option of a Stress-induced Gene into a Developmental Master Regulator”, Proceedings of the Royal Society B-Biological Sciences 287 (2020), https://doi.org/10.1098/rspb.2020.1414.

320

Ian Joint, Karen Tait, and Glen Wheeler, “Cross-kingdom Signalling: Exploitation of Bacterial Quorum Sensing Molecules by the Green Seaweed Ulva”, Philosophical Transactions of the Royal Society

Перейти на страницу: