Genetic Screening of Distribution Pattern of Roaches Rutilus rutilus and R. lacustris (Cyprinidae) in Broad Range of Secondary Contact (Volga Basin)
暂无分享,去创建一个
B. Levin | M. Levina | O. Ermakov | A. B. Ruchin | A. Konovalov | I. Pozdeev | O. Artaev | D. Vekhov | I. V. Alyushin | V. Iljin
[1] S. Litvinchuk,et al. A record of alien Pelophylax species and widespread mitochondrial DNA transfer in Kaliningradskaya Oblast’ (the Baltic coast, Russia) , 2020 .
[2] M. Thieme,et al. Global hydro-environmental sub-basin and river reach characteristics at high spatial resolution , 2019, Scientific Data.
[3] B. Levin,et al. Adaptive radiation of barbs of the genusLabeobarbus(Cyprinidae) in an East African river , 2019, Freshwater Biology.
[4] B. Levin,et al. Phylogeny, phylogeography and hybridization of Caucasian barbels of the genus Barbus (Actinopterygii, Cyprinidae). , 2019, Molecular phylogenetics and evolution.
[5] O. Ermakov,et al. Distribution and Origin of Two Forms of the Marsh Frog Pelophylax ridibundus Complex (Anura, Ranidae) from Kamchatka Based on Mitochondrial and Nuclear DNA Data , 2018, Biology Bulletin.
[6] B. Levin,et al. Phylogeny, phylogeography and hybridization of Caucasian barbels of the genus Barbus (Actinopterygii, Cyprinidae) , 2018, bioRxiv.
[7] M. T. Ferreira,et al. Mito-nuclear sequencing is paramount to correctly identify sympatric hybridizing fishes , 2018, Acta Ichthyologica et Piscatoria.
[8] A. Foote. Sympatric Speciation in the Genomic Era. , 2017, Trends in ecology & evolution.
[9] L. Excoffier,et al. Ancient hybridization fuels rapid cichlid fish adaptive radiations , 2017, Nature Communications.
[10] B. Levin,et al. mtDNA-based identification of two widespread roach species (Rutilus, Cyprinidae) characterized by sympatric zone , 2017, Inland Water Biology.
[11] B. Levin,et al. Phylogeny and phylogeography of the roaches, genus Rutilus (Cyprinidae), at the Eastern part of its range as inferred from mtDNA analysis , 2017, Hydrobiologia.
[12] N. Barton,et al. Genomics of hybridization and its evolutionary consequences , 2016, Molecular ecology.
[13] M. Schreider,et al. Morphology and genetics of the ciscoes (actinopterygii: salmoniformes: salmonidae: coregoninae: coregonus) From the Solovetsky Archipelago (White Sea) as a key to determination of the taxonomic position of ciscoes in Northeastern Europe , 2013 .
[14] Ł. Paśko,et al. On the variation and distribution of the lake minnow, Eupallasella percnurus (Pall.) , 2011 .
[15] Y. Dgebuadze,et al. Invasions of alien fishes in the basins of the largest rivers of the Ponto-Caspian Basin: Composition, vectors, invasion routes, and rates , 2011, Russian Journal of Biological Invasions.
[16] P. Berrebi,et al. Rare and asymmetrical hybridization of the endemic Barbus carpathicus with its widespread congener Barbus barbus. , 2009, Journal of fish biology.
[17] J. Durand,et al. Molecular systematics, phylogeny and biogeography of roaches (Rutilus, Teleostei, Cyprinidae). , 2008, Molecular phylogenetics and evolution.
[18] Lawrence M. Page,et al. Handbook of European Freshwater Fishes , 2008, Copeia.
[19] N. Bogutskaya,et al. Divergence with gene flow between Ponto‐Caspian refugia in an anadromous cyprinid Rutilus frisii revealed by multiple gene phylogeography , 2008, Molecular ecology.
[20] G. Krinner,et al. Ice-dammed lakes and rerouting of the drainage of northern Eurasia during the Last Glaciation. , 2004 .
[21] S. Aljanabi,et al. Universal and rapid salt-extraction of high quality genomic DNA for PCR-based techniques. , 1997, Nucleic acids research.
[22] B. Bengtsson. Hybrid zones and the evolutionary process , 1994 .
[23] Robert R. Sokal,et al. The Principles and Practice of Statistics in Biological Research. , 1982 .