Категории
Самые читаемые
Лучшие книги » Научные и научно-популярные книги » Биология » Похождения видов. Вампироноги, паукохвосты и другие переходные формы в эволюции животных - Андрей Юрьевич Журавлёв

Похождения видов. Вампироноги, паукохвосты и другие переходные формы в эволюции животных - Андрей Юрьевич Журавлёв

Читать онлайн Похождения видов. Вампироноги, паукохвосты и другие переходные формы в эволюции животных - Андрей Юрьевич Журавлёв

Шрифт:

-
+

Интервал:

-
+

Закладка:

Сделать
Перейти на страницу:
E. G. (2017) Water vascular system architecture in an Ordovician ophiuroid. Biology Letters, 13, 20170635. DOI: 10.1098/rsbl.2017.0635.

Clark E. G., Hutchinson J. R., Briggs D. E. G. (2020) Three-dimensional visualization as a tool for interpreting locomotion strategies in ophiuroids from the Devonian Hunsrück Slate. Royal Society Open Science, 7, 201380. DOI: 10.1098/rsos.201380.

Cooper R. A., Rigby S., Loydell D. K., Bates D. E. B. (2012) Palaeoecology of the Graptoloidea. Earth-Science Reviews, 112, 23–41.

Daley P. E. J. (1995) Anatomy, locomotion and ontogeny of the solute Castericystis vali from the Middle Cambrian of Utah. Geobios, 28, 585–615.

Dean Shackleton J. (2005) Skeletal homologies, phylogeny and classification of the earliest asterozoan echinoderms. Journal of Systematic Palaeontology, 3, 29–114.

Deline B. et al. (2020) Evolution and development at the origin of a phylum. Current Biology, 30, 1672–9.

Dickson J. A. D. (2002) Fossil echinoderms as monitor of the Mg/Ca ratio of Phanerozoic oceans. Science, 298, 1222–4.

Dominguez P., Jacobson A. G., Jefferies R. P. S. (2002) Paired gill slits in a fossil with a calcite skeleton. Nature, 417, 841–4.

Domke K. L., Dornbos S. Q. (2010) Paleoecology of the middle Cambrian edrioasteroid echinoderm Totiglobus: Implications for unusual Cambrian morphologies. Palaios, 25, 209–14.

Durham J. W. (1993) Observations on the Early Cambrian helicoplacoid echinoderms. Journal of Paleontology, 67, 590–604.

Durman P. N., Sennikov N. V. (1993) A new rhabdopleurid hemichordate from the Middle Cambrian of Siberia. Palaeontology, 36, 283–296.

Glass A., Blake D. B. (2004) Preservation of tube feet in an ophiuroid (Echinodermata) from the Lower Devonian Hunsrück Slate of Germany and a redescription of Bundenbachia beneckei and Palaeophiomyxa grandis. Paläontologische Zeitschrift, 78, 73–95.

Guensburg T. E., Blake D. B., Sprinkle J., Mooi R. (2016) Crinoid ancestry without blastozoans. Acta Palaeontologica Polonica, 61, 253–66.

Haude R., Langenstrassen F. (1976) Rotasaccus dentifer n. g. n. sp., ein devonischer Ophiocistioide (Echinodermata) mit «holothuroiden» Wandskleriten und «echinoidem» Kauapparat. Paläontologische Zeitschrift, 50, 130–50.

Hess H., Messing C. G., Ausich W. I. (2011) Treatise on Invertebrate Paleontology. Part T, Echinodermata 2, Revised, Crinoidea, Vol. 3. Lawrence, Kansas: University Kansas.

Khor J. M., Ettensohn C. A. (2020) Transcription factors of the alx family: Evolutionary conserved regulators of deuterostome skeletogenesis. Frontiers in Genetics, 11, 569314. DOI: 10.3389/fgene.2020.569314.

Koop D. et al. (2017) Nodal and BMP expression during the transition to pentamery in the sea urchin Heliocidaris erythrogramma: insights into patterning the enigmatic echinoderm body plan. BMC Developmental Biology, 17, 4. DOI: 10.1186/s12861-017-0145-4.

Lefebvre B., Derstler K., Sumrall C. D. (2012) A reinterpretation of the solutan Plasiacystis mobilis (Echinodermata) from the Middle Ordovician of Bohemia. Zoosymposia, 7, 287–306.

Lefebvre B. et al. (2019) Exceptionally preserved soft parts in fossils from the Lower Ordovician of Morocco clarify stylophoran affinities within basal deuterostomes. Geobios, 52, 27–36.

Li Y. et al. (2020) Genomic insights of body plan transitions from bilateral to pentameral symmetry in Echinoderms. Communications Biology, 3, 371. DOI: 10.1038/s42003-020-1091-1.

Maletz J. (2017) Graptolite Paleobiology. Chichester: Wiley-Blackwell.

Maletz J. (2019) Dictyonema Hall and its importance for evolutionary history of the Graptoloidea. Palaeontology, 62, 151–61.

Maletz J., Steiner M. (2015) Graptolite (Hemichordata, Pterobranchia) preservation and identification in the Cambrian Series 3. Palaeontology, 58, 1073–1107.

Melchin M. J., Doucet K. M. (1996) Modelling flow patterns in conical dendroid graptolites. Lethaia, 29, 39–46.

Miller A. K. et al. (2017) Molecular phylogeny of extant Holothuroidea (Echinodermata). Molecular Phylogenetics and Evolution, 111, 110–31.

Nanglu K., Caron J.-B., Conway Morris S., Cameron C. B. (2016) Cambrian suspension-feeding tubicolous hemichordates. BMC Biology, 14, 56. DOI: 10.1186/s12915-016-0271-4.

Nardin E. et al. (2017) Evolutionary implications of a new transitional blastozoan echinoderm from the middle Cambrian of the Czech Republic. Journal of Paleontology, 91, 672–84.

Rahman I. A., Clausen S. (2009) Re-evaluating the palaeobiology and affinities of the Ctenocystoidea (Echinodermata). Journal of Systematic Palaeontology, 7, 413–26.

Rahman I. A., Zamora S. (2012) The oldest cinctan caproid (stem-group Echinodermata) and the evolution of the water vascular system. Zoological Journal of the Linnean Society, 157, 420–32.

Rahman I. A., Stewart S. E., Zamora S. (2015) The youngest ctenocystoids from the Upper Ordovician of the United Kingdom and the evolution of the bilateral body plan in echinoderms. Acta Palaeontologica Polonica, 60, 39–48.

Rahman I. A., Zamora S., Falkingham P. L., Phillips J. C. (2015) Cambrian cinctan echinoderms shed light on feeding in the ancestral deuterostome. Proceedings of the Royal Society B: Biological Sciences, 282, 20151964. DOI: 10.1098/rspb.2015.1964.

Rahman I. A. et al. (2019) A new ophicistioid with soft-tissue preservation from the Silurian Herefordshire Lagerstätte, and the evolution of the holothurian body plan. Proceedings of the Royal Society B: Biological Sciences, 286, 20182792. DOI: 10.1098/rspb.2018.2792.

Rahman I. A. et al. (2020) Potential evolutionary trade-off between feeding and stability in Cambrian cinctan echinoderms. Palaeontology, 63, 689–701.

Reich M. (1999) Origins and biomechanical evolution of teeth in echinoids and their relatives. Palaeontology, 52, 1149–68.

Reich M., Smith A. B. (2009) Origins and biomechanical evolution of teeth in echinoids and their relatives. Palaeontology, 52, 1149–68.

Rozhnov S. V. (2012) Development of symmetry and asymmetry in the early evolution of the echinoderms. Paleontological Journal, 46, 780–92.

Sheffield S. L., Sumrall C. D. (2019) A re-interpretation of the ambulocral system of Eumorphocystis (Blastozoa, Echinodermata) and its bearing on the evolution of early crinoids. Palaeontology, 62, 163–173.

Smith A. B. (1985) Cambrian eleutherozoan echinoderms and the early diversification of edrioasteroids. Palaeontology, 52, 1149–68.

Smith A. B., Reich M. (2013) Tracing the evolution of holothurian body plan through stem-group fossils. Biological Journal of the Linnean Society, 109, 670–81.

Smith A. B., Savill J. J. (2001) Bromidechinus, a new Ordovician echinozoan (Echinodermata), and its bearing on the early history of echinoids. Transactions of the Royal Society of Edinburgh: Earth Sciences, 92, 137–47.

Smith A. B., Zamora S. (2013) Cambrian spiral-plated echinoderms from Gondwana reveal the earliest pentaradial body plan. Proceedings of the Royal Society B: Biological Sciences, 280, 20131197. DOI: 10.1098/rspb.2013.1197.

Sollas W. J. (1899) Fossils in the University Museum, Oxford: I. On Silurian Echinoidea and Ophiuroidea. The Quarterly Journal of the Geological Society of London, 55, 692–715.

Spencer W. K. (1951) Early Palaeozoic starfish. Proceedings of

Перейти на страницу:
На этой странице вы можете бесплатно скачать Похождения видов. Вампироноги, паукохвосты и другие переходные формы в эволюции животных - Андрей Юрьевич Журавлёв торрент бесплатно.
Комментарии