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39 results for “Oithona”
Figure 6 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 6. Major shipping lanes in the Black Sea http://www.marinevesseltraffic.com/2013/06/black-sea-marine-traffic.html. © Marine Vessel Traffic. Reproduced by permission of Marine Vessel Traffic. Permission to reuse must be obtained from the rightsholder.
Figure 1 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 1. (●) Previous report sites of Oithona davisae (Altukhov et al. 2014), (▲) Time series stations and (+) sampling locations.
Figure 2 in Speciation of two salinity-associated size forms of Oithona dissimilis (Copepoda: Cyclopoida) in estuaries
Figure 2. Gene trees for nuclear LSU rRNA (top) and mtCOI (bottom) showing proportional differences between individual females of the large and small forms of Oithona dissimilis from Okinawa-jima island. Numbers at branch points are bootstrap values (i.e. percentage of trees with that branch point among 1000 subreplicates). The specimen numbers correspond to those in Table 1.
Figure 1 in Speciation of two salinity-associated size forms of Oithona dissimilis (Copepoda: Cyclopoida) in estuaries
Figure 1. Large and small forms of Oithona dissimilis from Okinawa-jima island. Female of the large form from Katabaru Beach: (A) Habitus; (B) mandibular palp. Female of the small form from Hija-gawa River: (C) habitus; (D) mandibular palp. Arrows "a" and "b" indicate two pointed spines on the mandibular basis and five setae on the mandibular endopod, respectively.
Figure 2 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 2. Horizontal distribution of surface temperature, surface and bottom salinity, bottom DO and transparency in Tokyo Bay (modified from Investigation Committee for Fisheries Impacts of Trans-Tokyo Bay Highway and Japan Fisheries Resources Conservation Assoc 1987). Numerals in parentheses indicate mean. Surface: 0.5 m, bottom: 1 m above sea floor.
Figure 1 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 1. Map showing stations where plankton samples were collected. Numerals in parentheses indicate depth (m). Broken lines show boundaries between areas as used in the text.
Figure 5 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 5. Grouping results for copepod community in Tokyo Bay by a two dimensional NMDS ordination plot. Arrows indicate environmental gradients that have a significant (p <0.01) multiple regression to the ordination score from low to high.
Figure 3 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 3. Horizontal distribution of total copepod abundance (including immature copepodids), numerical composition of copepod species, number of species and diversity index (H′) in Tokyo Bay.
Figure 8 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 8. Comparison of July's copepod abundance including immature copepodids in Tokyo Bay between 1948 and 1986.
Figure 4 in Spatiotemporal distribution of planktonic copepod communities in Tokyo Bay where Oithona davisae Ferrari and Orsi dominated in mid-1980s
Figure 4. Grouping results for adult copepod community in Tokyo Bay by a cluster dendrogram. Letters and numerals near symbols indicate sample name (month–station no.).
Figure 3. Chlorophyll-a in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 3. Chlorophyll-a distributions during the sampling period.
Figure 2 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 2. The average monthly sea surface temperature in 2007 and 2015 (°C).
Figure 3. Chlorophyll-a in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 3. Chlorophyll-a distributions during the sampling period.
Figure 2 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 2. The average monthly sea surface temperature in 2007 and 2015 (°C).
Fig. 4 in Spatio-temporal variation of the invasive copepod Oithona davisae in the zooplankton community of Kavala harbour Abstract
Fig. 4: Contribution (%) of Oithona davisae and Oithona nana to the rest of the adult copepods of the zooplankton community collected with the 50 and 200 μm net.
Figure 6 in Population dynamics of the copepod invader Oithona davisae in the Black Sea
Figure 6. Shares (%) of females with egg sacs in the total number of females (), nauplii in the total population abundance (- - - -), and CI + II (), CIII (), CIV (), and CV () in the total number of copepodites during the first three generations of Oithona davisae in March–July 2014.
Figure 1 from: Cepeda GD, Sabatini ME, Scioscia CL, Ramírez FC, Viñas MD (2016) On the uncertainty beneath the name Oithona similis Claus, 1866 (Copepoda, Cyclopoida). ZooKeys 552: 1-15. https://doi.org/10.3897/zookeys.552.6083
Figure 1 - Former selected drawings of Oithona similis / helgolandica. A, B Oithona spinifrons Boeck, 1864 (=? Oithona helgolandica Claus), female body and "one of swimming feet" (= leg 4?) (after Brady1878, Plates XIV and XXIV A) C–F Oithona similis exopod of legs 1 to 4 (after Gisbrecht 1893, Plate 34) G–J Oithona helgolandica, female body, legs 1-2 and leg 4 (after Sars 1913, Plate III) K–O Oithona similis, female body and legs 1 to 4 (after Nishida 1985, fig. 50 and 51). Original illustrations were faithfully copied in all details and rearranged to facilitate comparisons. Scale bars only provided in Nishida (1985).
Figure 4 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 4. Photographs of Oithona davisae: (a, b) lateral view of female with egg sac; (c) dorsal view of male; (d) lateral view of urosome; (e) rostrum of female (Photographs by Yildiz and Feyzioglu).
Figure 5 in First observation and seasonal dynamics of the new invasive planktonic copepod Oithona davisae Ferrari and Orsi, 1984 along the southern Black Sea (Anatolian Coast)
Figure 5. (a) Abundance of Oithona davisae (ind. m−3); (b) abundance of female O. davisae with egg sac (ind. m−3).
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