Дальневосточные полевки Alexandromys (Rodentia: Cricetidae) из позднеплейстоценовых и голоценовых отложений пещеры Медвежий клык Приморского края России

Л.Л. Войта, Ф.Н. Голенищев и М.П. Тиунов

Труды Зоологического института РАН, 2019, 323(3): 313–346   ·   https://doi.org/10.31610/trudyzin/2019.323.3.313

Полный текст  

Резюме

В статье дается описание материала по дальневосточным полевкам Alexandromys (Rodentia: Cricetidae) из позднеплейстоценовых и голоценовых отложений пещеры Медвежий Клык, который представлен в основном изолированными зубами. Была изучена морфология и размерная изменчивость первого нижнего коренного зуба (m1) (n = 542). В материале было определено наличие A. fortis, A. cf. maximowiczii, A. cf. oeconomus, A. cf. mongolicus. Возможные колебания палеоареалов в позднем плейстоцене и голоцене, широкие пределы варьирования формы антероконида m1 среднеразмерных видов дальневосточных полевок и неопределенность, связанная с возможным присутствием в ископаемом материале «архаичных» и/или «уклоняющихся» морфотипов m1, не позволили нам однозначно определить виды. Применение методов геометрической морфометрии показало, что форма антероконида m1 варьирует в широких пределах без четкой видоспецифичности, т.е. каждый зуб имеет такую форму антероконида, которая в заданных пределах варьирования может отчасти повториться в любой другой популяции этого и/или другого вида.

Ключевые слова

видовое определение, геометрическая морфометрия, морфологическая изменчивость, одонтология, первый нижний коренной зуб, Alexandromys, Arvicolinae, Cricetidae, Rodentia

Поступила в редакцию 21 апреля 2019  ·  Принята в печать 23 августа 2019  ·  Опубликована 1 октября 2019 г.

Литература

Abramson N.I. and Lissovsky A.A. 2012. Subfamily Arvicolinae Gray 1821. In: I.Ya. Pavlinov and A.A. Lissovsky (Eds.). The Mammals of Russia: A Taxonomic and Geographic Reference. (Archives of Zoological Museum of MSU. Vol. 52). KMK Scientific Press, Moscow: 220–276.

Agadzhanyan A.K. and Erbayeva M.A. 1983. Late Cenozoic rodents and lagomorphs of the USSR. Nauka, Moscow, 187 p. [In Russian].

Alekseeva E.V. and Golenishchev F.N. 1986. Fossil remains of grey voles of genus Microtus from Cave Bliznetz (Southern Far East). Proceedings of the Zoological Institute of the Russian Academy of Sciences, 156: 134142. [In Russian].

Alexeeva N. V. 2005. Environmental evolution of Late Cenozoic of West Transbaikalia (based on small mammal faunas). GEOS Press, Moscow, 141 p. [In Russian]

Bolshakov V.N., Vasilyeva I.A. and Maleeva A.G. 1980. Morphotypical mutability of voles’ teeth. Nauka, Moscow, 140 p. [In Russian].

Courant F., Brunet-Lecomte P., Volobuev V., Cha­line J., Quéré J-P., Nadachowski A., Montuire S., Bao G., Viriot L., Rausch R., Erbajeva M., Shi D. and Giraudoux P. 1999. Karyological and dental identification of Microtus limnophilus in a large focus of alveolar echinococcosis (Gansu, China). Animal biology and pathology, 322: 473–480. https://doi.org/10.1016/S0764-4469(99)80097-3

Dokuchaev N.E. 2014. Far-Eastern grey voles (Rodentia: Cricetidae: Alexandromys) from Bolshoi Shantar Island. Russian Journal of Theriology, 13: 65–70. https://doi.org/10.15298/rusjtheriol.13.2.02

Dokuchaev N.E. and Sheremetyeva I.N. 2017. On the identity of grey voles (Cricetidae, Rodentia) from the Bolshoi Shantar island, sea of Okhotsk, with Gromov’s vole (A. gromovi Vorontsov et al., 1988). Zoologicheskii Zhurnal, 96: 1425–1430. [In Russian]. https://doi.org/10.1134/S1062359018070051

Golenishchev F.N., Voyta L.L., Moroldoev I.V., Abram­son N.I., Petrova T.V. and Kartavtseva I.V. 2018. New Transbaikalian finds of the Muja Valley Vole (Rodentia: Cricetidae: Alexandromys mujanensis). Proceedings of the Zoological Institute of the Russian Academy of Sciences, 322: 357–384. [In Russian]. https://doi.org/10.31610/trudyzin/2018.322.3.357

Golenishchev F.N. 1982. The gray voles (subgenus Microtus, group “maximowiczii”) of Eastern Siberia and the Far East. Abstract of the thesis, PhD, Leningrad: 26 p. [In Russian].

Hammer Ø., Harper D.A.T. and Ryan, P.D. 2001. PAST: Paleontological Statistics software package for and data analysis. Palaeontologia Electronica, 4: 1–9.

Haring E., Voyta L., Däubl B. and Tiunov M.P. 2015. Comparison of genetic and morphological characters in fossil teeth of grey voles from the Russian Far East (Rodentia: Cricetidae: Alexandromys). Mammalian Biology, 80: 496–504. https://doi.org/10.1016/j.mambio.2015.08.001

Järvinen E., Salazar-Ciudad I., Birchmeier W., Taketo M. M., Jernvall J. and Thesleff I. 2006. Continuous tooth generation in mouse is induced by activated epithelial Wnt/β-catenin signaling. Proceedings of the National Academy of Sciences of the United States of America, 103: 18627–18632. https://doi.org/10.1073/pnas.0607289103

Jernvall J. 1995. Mammalian molar cusp patterns: Developmental mechanisms of diversity. Acta Zoologica Fenica, 198: 1–61.

Jernvall J. and Thesleff I. 2012. Tooth shape formation and tooth renewal: evolving with the same signals. Development, 139: 3487–3497. https://doi.org/10.1242/dev.085084

Kang T-H., Kim D-H., Lee H., Cho H-J, Hur W-H., Han S-H., Kim Y-J., Paek W-K., Jin S-D. and Paik I-H. 2013. Analysis of рome kange of Eurasian Eagle Owl (Bubo bubo) by WT-100. Journal of Asia-Pacific Biodiversity, 6: 369–373. https://doi.org/10.7229/jkn.2013.6.3.369

Kartavtseva I.V., Sheremetyeva I.N., Korobitsina K.V., Nemkova G.A., Konovalova E.V., Korablev V.V. and Voyta L.L. 2008. Chromosomal forms of Microtus maximowiczii (Schrenck, 1859) (Rodentia, Cricetidae): variability in 2n and NF in different geographic regions. Russian Journal of Theriology, 7: 89–97. https://doi.org/10.15298/rusjtheriol.07.2.05

Kavanagh K.D., Evans A.R. and Jernvall J. 2007. Predicting evolutionary patterns of mammalian teeth from development. Nature, 449: 427–432. https://doi.org/10.1038/nature06153

Klingenberg C. P. 2011. MorphoJ: an integrated software package for geometric morphometrics. Molecular Ecolo­gy Resources, 11: 353–357. https://doi.org/10.1111/j.1755-0998.2010.02924.x

Korotky A.M., Volkov V.G., Grebennikova T.A., Razzhigaeva N.G., Pushkar’ V.S., Ganzey L.A. and Mohova L.M. 2005. Far East. In: A.A. Velichko and V.P. Nechaev (Eds.). Cenozoic Climatic and Environmental Changes in Russia. Geological Society of America, Boulder, CO: 121–138.

Lissovsky A.A., Obolenskaya E.V., Abramson N.I., Dokuchaev N.E., Yakimenko V.V., Mal’kova M.G., Bogdanov A.S. and Ivanova N.V. 2009. Geographic variation of Microtus middendorffii (Cricetidae, Arvico­linae, Rodentia) sensu lato studied by craniometrical and mitochondrial features. Russian Journal of Theriology, 9: 71–81. https://doi.org/10.15298/rusjtheriol.09.2.03

Lissovsky A.A., Petrova T.V., Yatsentyuk S.P., Golenishchev F.N., Putincev N.I., Kartavtseva I.V., Sheremetyeva I.N. and Abramson N.I. 2018. Multilocus phylogeny and taxonomy of East Asian voles Ale­xandromys (Rodentia, Arvicolinae). Zoologica Scripta, 47: 9–20. https://doi.org/10.1111/zsc.12261

Maleeva A.G. 1976. On dental variation in voles (Microtinae). Proceedings of the Zoological Institute, Academy of Sciences of the USSR, 60: 48–57. [In Russian].

Markova E., Sibiryakov P. and Ehrich D. 2016. Surviving in the High Arctic: dental variation in a casually introduced population of Microtus rossiaemeridionalis (Arvicolinae, Rodentia) on Svalbard. Acta Zoologica, 97: 442453. https://doi.org/10.1111/azo.12138

Markova E.A., Sibiryakov P.A., Kartavtseva I.V., La­pin A.S., Morozkina A.V., Petukhov V.A., Tiunov M.P. and Starikov V.P. 2019. What can an invasive species tell us about Evolution? A study of dental variation in disjunctive populations of Microtus rossiaemeridionalis (Arvicolinae, Rodentia). Journal of Mammalian Evolution, 26: 267–282. https://doi.org/10.1007/s10914-017-9401-1

McGuire J.L. 2010. Geometric morphometrics of vole (Microtus californicus) dentition as a new paleoclimate proxy: Shape change along geographic and climatic clines. Quaternary International, 212: 198–205. https://doi.org/10.1016/j.quaint.2009.09.004

McGuire J.L. 2011. Identifying California Microtus species using geometric morphometrics documents Quaternary geographic range contractions. Journal of Mammalogy, 92: 1383–1394. https://doi.org/10.1644/10-MAMM-A-280.1

Meyer M.N., Golenishchev F.N., Radzhabli S.I. and Sablina O.V. 1996. The grey voles (subgenus Microtus) of Russia and adjacent territories. Proceedings of the Zoological Institute of the Russian Academy of Sciences, 232: 1–320. [In Russian].

Ognev O.S. 1914. Die Säugetiere aus dem Südlichen Ussuri-Gebiete. Journal de la Section Zoologigue de la Société Impériale des Amis des Sciences Naturalles, d’Antropologie et d’Ethnographie, 2(3): 101–134.

Panasenko V.E. and Tiunov M.P. 2010. The population of small mammals (Mammalia: Eulipotyphla, Rodentia, Lagomorpha) on the southern Sikhote-Alin in the Late Pleistocene and Holocene. Bulletin of Far Eastern Branch of the Russian Academy of Sciences, 6: 60–67. [In Russian].

Panasenko V.E. and Kholin S.K. 2011. Historical aspect of the low jaw variability of Crocidura shantungensis Miller, 1901 (Eulipotyphla: Soricidae). Amurian Zoological Journal, 3: 391–396. [In Russian].

Perez S.I., Bernal V. and Gonzales N. 2006. Differences between sliding semi-landmark methods in geometric morphometrics, with an application to human craniofacial and dental variation. Journal of Anatomy, 208: 769–784. https://doi.org/10.1111/j.1469-7580.2006.00576.x

Polly P.D. 2007. Development with a bite. Nature, 449: 413–415. https://doi.org/10.1038/449413a

Pozdnyakov A.A. 2010. Morphological diversity: characteristic, structure, analysis. In: V.N. Bolshakov (Ed.). Communities and populations: Ecological and morphological analysis. KMK Scientific Press, Moscow-Novosibirsk: 133–157. [In Russian].

Renvoisé E., Evans A.R., Jebrane A., Labruère C., Laffort R. and Montuire S. 2009. Evolution of Mammal tooth patterns: New insights from a developmental predict model. Evolution, 63: 1327–1340. https://doi.org/10.1111/j.1558-5646.2009.00639.x

Rohlf F.J. 1999. Shape statistics: Procrustes superimpositions and tangent spaces. Journal of Classification, 16: 197–223. https://doi.org/10.1007/s003579900054

Rohlf F.J. 2003. tpsRelw, version 1.35. http://life.bio.sunysb.edu/morph/index.html [Jan 2017]

Rohlf F.J. 2004. tpsUtil, version 1.28. http://life.bio.sunysb.edu/morph/index.html [Jan 2017]

Rohlf F.J. 2007. tpsDig2, version 2.31. http://life.bio.sunysb.edu/morph/index.html [Jan 2017]

Rohlf F.J. and Slice D.E. 1990. Extensions of the Procrustes Method for the optimal superimposition of landmarks. Systematic Zoology, 39: 40–59. https://doi.org/10.2307/2992207

Shchetnikov A.A., Khenzykhenova F.I., Klemen­t’ev A.M., Simakova A.N., Semenei E.Y. and Filinov I.A. 2015. Changes of environments and climate during the Late Pleistocene and Holocene reconstructed from aeolian and colluvial deposits of the Zaktui site (Tunka rift valley, Baikal region). Quaternary International, 355: 80–90. https://doi.org/10.1016/j.quaint.2014.07.074

Sheremetyeva I.N., Kartavtseva I.V., Voyta L.L. and Tiunov M.P. 2010. New data on the distribution of Microtus voles (Rodentia, Cricetidae) in the Russian Far East. Zoologicheskii Zhurnal, 89: 1273–1276. [In Russian].

Smith A.T. and Xie Y. 2008. A Guide to the Mammals of China. Princeton University Press, Princeton-New Jersey: 544 p.

Tiunov M.P. 2014.Myospalax psilurus – a relic of the southeastarn outskirts of the mammoth fauna. In: A.V. Borodin, E. A. Markova and T.V. Strukova (Eds.). The Quaternary of the Urals: global trends and Pan-European Quaternary records. International conference INQUA-SEQS. Ural Federal University, Ekaterinburg: 163–166.

Voyta L.L., Golenishchev F.N. and Tiunov M.P. 2013. Analysis of shape and size variation of the first lower molar in the Far-Eastern grey voles of genus Alexandromys (Rodentia: Cricetidae) from Russian fauna using geometric morphometrics. Russian Journal of Theriology, 12: 19–32. https://doi.org/10.15298/rusjtheriol.12.1.02

Zelditch M.L., Swiderski D.L., Sheets H.D. and Fink W.L. 2004. Geometric Morphometrics for Biologists: A Primer. Elsevier Academic Press, San Diego: 437 p.

 

© Зоологический институт Российской академии наук
Последнее изменение: 25 марта 2024 г.