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11 results for “Temoridae”
Figure 1 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 1. Locations of the studied populations of E. affinis and E. carolleeae. Place names are listed in Table 1.
Figure 5 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 5. Distribution of Eurytemora affinis and Eurytemora carolleeae individuals calculated on the base of indices: ind.1, ind.2, ind.3 (see text) (A) for females and (B) for males. Eurytemora affinis from the Gulf of Finland (open squares), from the Gulf of Riga (open triangles) and from the Vistula lagoon (open circles). E. carolleeae from the Gulf of Finland (filled square) and from the Gulf of Riga (filled triangles).
Figure 4 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 4. Chosen morphological characters for analysis of Eurytemora carolleeae (A–C) and Eurytemora affinis (D–F): length and width of furcal branches (A, D), parts of male P5 swimming legs proportions (C, F), female genital segment (B, E).
Figure 3 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 3. Common view of terra tipica Eurytemora carolleeae and Eurytemora affinis (A) E. carolleeae male and (B) E. carolleeae female from Chesapeake Bay; (C) E. affinis male and (D) E. affinis female from the Elbe River.
Figure 2 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 2 Feeding appendages of EurytemoralacustrisA mandible B maxilla C maxilliped D maxillule. Scale bars: 20 µm.
Figure 4 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 4 Variability of number of setae on second segment of endopod on second pair of male leg of Eurytemoralacustris. Scale bar: 20 µm.
Figure 3 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 3 Legs of EurytemoralacustrisA first pair B second pair C third pair D fourth pair. Scale bars: 20 µm.
Figure 6 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 6 Evolutionary relationship of taxa based on mCOI sequences. The phylogenetic tree was inferred using the Minimum Evolution method (MEGA 10.0.5, Kumar et al. 2018). The evolutionary distances were computed using the Tamura 3-parameter method [3] and are in the units of the number of base substitutions per site. Sequences deposited at GenBank from Sukhikh et al. (2013, 2018), Vasquez et al. (2016), and Alekseev and Sukhikh (unpublished).
Figure 5 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 5 Fifth pair of legs of related Eurytemora species AE.affinisBE.veloxCE.lacustris. Abbreviations: AS – apical seta, DS – distal segment, LS – lateral spine, LB – left basipod, RB – right basipod. Arrows indicate important characteristics of fifth pair of legs.
Figure 1 from: Sługocki Ł, Rymaszewska A, Kirczuk L (2019) Insights into the morphology and molecular characterisation of glacial relict Eurytemora lacustris (Poppe, 1887) (Crustacea, Copepoda, Calanoida, Temoridae). ZooKeys 864: 15-33. https://doi.org/10.3897/zookeys.864.34259
Figure 1 Distribution map of Eurytemoralacustris. Dark grey colour indicates present distribution of E.lacustris. Light grey colour demonstrates countries in which occurrence of this species is uncertain. Black dots indicate records in 21st century, asterisk indicates a new record of E.lacustris in Lake Cieszęcino (Poland). The map does not include recent records in Volga basins (Popov 2011) and North America (Dussart and Defaye 2002).
Figure 2 in Invasion of Eurytemora sibling species (Copepoda: Temoridae) from north America into the Baltic Sea and European Atlantic coast estuaries
Figure 2. The phylogenetic tree constructed on the basis of 52 nucleotide sequences of a region of the Eurytemora affinis cytochrome oxidase I gene (611 base pairs). The indices of bootstrap analysis (%) are shown (values below 50 are not presented) U-L, V, N - Gulf of Finland; R, Riga Bay; VL, Vistula Lagoon. The sites of sample collection are shown in Figure 1. Eurytemora herdmani and Eurytemora pacifica were used as an outgroup.
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