реклама
Бургер менюБургер меню

Андрей Журавлёв – Похождения видов. Вампироноги, паукохвосты и другие переходные формы в эволюции животных (страница 109)

18

Stanley G. D., Jr. (2003) The evolution of modern corals and their early history. Earth-Science Reviews, 60, 195–225.

Stanley G. D., Jr., Stürmer W. (1983) A new fossil ctenophore discovered by X-rays. Nature, 327, 61–3.

Stolarski J. et al. (2011) The ancient evolutionary origins of Scleratinia revealed by azooxanthellate corals. BMC Evolutionary Biology, 11, 316. DOI: 10.1186/1471-2148-11-316.

Tornabene C., Martindale R. C., Wang X. T., Schaller M. F. (2017) Detecting photosymbiosis in fossil scleractinian corals. Scientific Reports, 7, 9465. DOI: 10.1038/s41598-017-09008-4.

Van Iten H., Simões M. G., Marques A., Collins A. (2006) Reassessment of the phylogenetic position of conulariids in the subphylum Medusozoa (phylum Cnidaria). Journal of Systematic Palaeontology, 4, 109–18.

Van Iten H. et al. (2014) Origin and early diversification of the phylum Cnidaria Verrill: Major developments in the analysis of the taxon’s Proterozoic-Cambrian history. Palaeontology, 57, 677–90.

Waggoner B. M., Langer M. R. (1993) A new hydroid from the Upper Cretaceous of Mississippi. Paläontologische Zeitschrift, 67, 253–9.

Whelan N. V. (2017) Ctenophore relationships and their placement as the sister group to all other animals. Nature Ecology & Evolution, 1, 1737–46..

Wooldridge S. A. (2013) Breakdown of the coral-algal symbiosis: towards formalizing a linkage between warm-water bleaching thresholds and the growth rate of the intracellular zooxanthellae. Biogeosciences, 10, 1647–58.

Yang B. et al. (2020) Ultrastructure of Ediacaran cloudinids suggests diverse taphonomic histories and affinities with non-biomineralized annelids. Scientific Reports, 10, 535. DOI: 10.1038/s41598-019-56317-x.

Young G. A., Hagadorn J. W. (2010) The fossil record of cnidarians medusae. Palaeoworld, 19, 212–21.

Young G. A. et al. (2012) Great Canadian Lagerstätten 3: Late Ordovician Konservat-Lagerstätten in Manitoba. Geoscience Canada, 39, 201–13.

Zágoršek K., Taylor P. D., Vodrážka R. (2009) Coexistence of symbiotic hydroids (Protulophila) on serpulids and bryozoans in a cryptic habitat at Chrtníky (lower Turonian, Czeck Republic). Bulletin of Geosciences, 84, 631–6.

Zapalski M. K., Clarkson E. N. K. (2015) Enigmatic fossils from the Lower Carboniferous Shrimp Bed, Granton, Scotland. PLoS ONE 10 (12), e0144220. DOI: 10.1371/journal.pone.0144220.

Zhao Y. et al. (2019) Cambrian sessile, suspension feeding stem-group ctenophores and evolution of the comb jelly body plan. Current Biology, 29, 1112–25.

Zhuravlev A. Yu., Debrenne F., Lafuste J. (1993) Early Cambrian microstructural diversification of Cnidaria. Courier Forschungsinstitut Senckenberg, 164, 365–72.

Карасева Н. П., Римская-Корсакова Н. Н., Галкин С. В., Малахов В. В. Таксономия, географическое и батиметрическое распространение вестиментифер (Annelida, Siboglinidae) // Зоологический журнал. 2016. Т. 95, № 6. С. 624–659.

Малахов В. В., Галкин С. В. Вестиментиферы – бескишечные беспозвоночные морских глубин. – М.: КМК Scientific Press Ltd., 1998.

Римская-Корсакова Н. Н., Малахов В. В., Галкин С. В. Строение щупальцевого аппарата вестиментиферы Riftia pachyptila (Polychaeta, Vestimentifera) // Зоологический журнал. 2011. Т. 90, № 3. С. 259–271.

Bomfleur B. et al. (2015) Fossilized spermatozoa preserved in a 50-Myr-old annelid cocoon from Antarctica. Biology Letters, 11, 20150431. DOI: 10.1098/rsbl.2015.0431.

Broomell C. C., Mattoni M. A., Zok F. W., Waite J. H. (2006) Critical role of zinc in hardening of Nereis jaws. Journal of Experimental Biology, 209, 3219–225.

Chen H. et al. (2020) A Cambrian crown annelid reconciles phylogenomics and the fossil record. Nature, 583, 249–52.

Conway Morris S. (1979) Middle Cambrian polychaetes from the Burgess Shale of British Columbia. Philosophical Transactions of the Royal Society B: Biological Sciences, 285, 227–74.

Conway Morris S., Peel J. S. (2008) The earliest annelids: Lower Cambrian polychaetes from the Sirius Passet Lagerstätte, Peary Land, North Greenland. Acta Palaeontologica Polonica, 53, 137–48.

Danise S., Higgs N. D. (2015) Bone-eating Osedax worms lived on Mesozoic marine reptile deadfalls. Biology Letters, 11 (4), 20150072. DOI: 10.1098/rsbl.2015.0072.

Darwin C. (1881) The Formation of Vegetable Mould, Through the Action of Worms, with Observations on Their Habits. – L.: J. Murray.

Ehlers E. (1869) Ueber fossile Würmer aus dem lithographischen Schiefer in Bayern. Palaeontographica, 17, 145–75.

Eibye-Jacobsen D., Vinther J. (2012) Reconstructing the ancestral annelid. Journal of Zoological Systematics and Evolutionary Research, 50, 85–7.

Eriksson M., Elfman M. (2000) Enrichment of metals in the jaws of fossil and extant polychaetes – distribution and function. Lethaia, 33, 75–81.

Eriksson M. E., Parry L. A., Rudkin D. M. (2017) Earth’s oldest ‘Bobbit worm’ – gigantism in a Devonian eunicidan polychaete. Scientific Reports, 7, 43061. DOI: 10.1038/srep43061.

Gügel B. et al. (2017) A new subdisarticulated machaeridian from the Middle Devonian of China: Insights into taphonomy and taxonomy using X-ray microtomography and 3D-analysis. Acta Palaeontologica Polonica, 62, 237–47.

Han J., Conway Morris S., Hoyal Cuthill J. F., Shu D. (2019) Sclerite-bearing annelids from the lower Cambrian of South China. Scientific Reports, 9, 4955. DOI: 10.1038/s41598-019-40841-x.

Hazen B. M. (1937) A fossil earthworm (?) from the Paleocene of Wyoming. Journal of Paleontology, 11, 250.

Hints O. et al. (2017) Early Middle Ordovician scolecodonts from north-western Argentina and the emergence of labiognath polychaete jaw apparatuses. Palaeontology, 60, 583–93.

Ippolitov A. P., Vinn O., Kupriyanova E. K., Jäger M. (2014) Written in stone: history of serpulids polychaetes through time. Memoirs of Museum Victoria, 71, 123–59.

Kiel S., Kahl W.-A., Goedert J. L. (2011) Osedax borings in fossil marine bird bones. Naturwissenschaften, 98, 51–5.

Kielan-Jaworowska Z. (1966) Polychaete jaw apparatuses from the Ordovician and Silurian of Poland and a comparison with modern forms. Palaeontologia Polonica, 16, 1–152.

Kozur H. (1970) Fossile Hirudinea aus dem Oberjura von Bayern. Lethaia, 3, 225–32.

Little C. T. S. et al. (1999) Two Palaeozoic hydrothermal vent communities from the southern Ural Mountains, Russia. Palaeontology, 42, 1043–78.

Little C. T. S., Danelian T., Herrington R. J., Haymon R. M. (2004) Early Jurassic hydrothermal vent community from the Franciscan Complex, California. Journal of Paleontology, 78, 542–59.

Manum S. B., Bose M. N., Sawyer R. T. (1991) Clitellate cocoons in freshwater deposits since the Triassic. Zoologica Scripta, 20, 347–66.

McLoughlin S., Bomfleur B., Mörs T., Reguero M. (2016) Fossil clitellate annelid cocoons and their microbiological inclusions from the Eocene of Seymour Island, Antarctica. Palaeontologia Electronica, 19.1.11A, 1–27. https://core.ac.uk/download/pdf/326792266.pdf.

Muir, L. A., Botting, J. P. (2007) A Lower Carboniferous sipunculan from the Granton Shrimp Bed, Edinburgh. Scottish Journal of Geology, 43, 51–6.

Nanglu K., Caron J.-B. (2018) A new Burgess Shale polychaete and the origin of the annelid head revisited. Current Biology, 28, 319–26.

Parry L., Tanner A., Vinther J. (2014) The origin of annelids. Palaeontology, 57, 1091–1103.

Parry L., Vinther J., Edgecombe G. D. (2015) Cambrian stem-group annelids and a metameric origin of the annelid head. Biology Letters, 11, 20150763. DOI: 10.1098/rsbl.2015–0763.

Parry L., Eriksson M. E., Vinther J. (2019) The annelid fossil record. In Handbook of Zoology: Annelida – V. 1. Annelida Basal Groups and Pleistoannelida, Sedentaria I. Eds. G. Purschke, M. Böggemann, W. Westheide. Berlin; Boston: De Gruyter. P. 69–88.

Parry L., Caron J.-B. (2019) Canadia spinosa and the early evolution of the annelid nervous system. Science Advances, 5, eaax5858. DOI: 10.1126/sciadv.aax5858.

Paxton H., Eriksson M. E. (2013) Ghosts from the past – ancestral features reflected in the jaw ontogeny of the polychaetous annelids Marphysa fauchaldi (Eunicidae) and Diopatra aciculata (Onuphidae). GFF, 134, 309–16.

Poinar G. O., Jr. (2007) Enchytraeidae (Annelida: Oligochaeta) in amber. Megadrilogica, 11, 53–7.

Sanfilippo R., Rosso A., Reitano A., Insacco G. (2017) First record of sabellid and serpulid polychaetes from the Permian of Sicilia. Acta Palaeontologica Polonica, 62, 25–38.

Shcherbakov D. E., Timm T., Tzetlin A. B., Vinn O., Zhuravlev A. Yu. (2020) A probable oligochaete from an Early Triassic Lagerstätte of the southern Cis-Urals and its evolutionary implications. Acta Palaeontologica Polonica, 65, 219–233.

Struck T. et al. (2015) The evolution of annelids reveals two adaptive routes to the interstitial realm. Current Biology, 25, 1993–9.

Szaniawski H., Imajima M. (1996) Hartmaniellidae – living fossils among polychaetes. Acta Palaeontologica Polonica, 41, 111–25.

Timm T. (1981) On the origin and evolution of aquatic Oligochaeta. Eesti NSV Teaduste Akadeemia Toimetised, Bioloogia, 30, 174–81.

Ulrich H., Schmelz R. M. (2001) Enchytraeidae as prey of Dolichopodidae, recent and in Baltic amber (Oligochaeta; Diptera). Bonner zoologische Beiträge, 50, 89–101.