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49 results for “Pampus”

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Fig. 2 in Pampus candidus

Fig. 2. General view of a new set of regenerated structures of Cassiopea xamachana (specimen #1) from Rio Grande do Sul, Brazil.

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Fig. 1 in Pampus candidus

Fig. 1. Cladogram representation of the maximum likelihood tree for Cassiopea (lnL = -3620.5074) under the GTR+F+I+G4 model (chosen according to AICc), highlighting the identification of the newly sequenced organisms and their phylogenetic position (species identifications were based on the species hypothesis by Morandini et al. (2017) and Kayal et al. (2012; GenBank: JN700936.1–identification updated on 15 Oct 2018). Support values are shown on branches (as in figure order: SH-aLRT (%) / parametric aLRT support / aBayes support / bootstrap support (%); * = less than 0.7, 70).

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Fig. 3 in Pampus candidus

Fig. 3. Karstama boholano (Ng, 2002), female valvae, western Green Island, Taitung (NTOU 1). A, general view; B, left gonopore. Table 2. The pairwise divergence distances by Kimura 2-parameter in this study

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Fig. 2 in Pampus candidus

Fig. 2. Karstama boholano (Ng, 2002), associated with the habitat in Taiwan, females. A, B, western Green Island, Taitung (NTOU 1); C, D, eastern Green Island, Taitung (NTOU 2); E, Kenting National Park, Pingtung (NTOU 3); F, natural habitat. A, C, E, dorsal view; B, frontal view, laying eggs before larvae released; D, ventral view.

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Fig. 4 in Pampus candidus

Fig. 4. Specimen #2 of Cassiopea xamachana. (A) Gastrovascular system, indicating some of the radial canals and anastomoses. In the square selection, observe the connection between ST-1 and ST-3 through anastomosing networks and radial canals. In the rectangular selection, ST-2 is connected to ST-1 by a network of anastomosing canals. (B) Rhopaliar niche without rhopalium; (C) a detailed view of the subgenital ostium of ST- 2. Note: the gastrovascular system was injected with dye to highlight connections.

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Fig. 6 in Pampus candidus

Fig. 6. (A) A map reproduced after Bianucci et al. (2006), showing the review data of world-wide fossil records (empty circles) and the distribution of humpback whales (gray patches). The broken arrow indicates a prehistorical migration route from North Atlantic to Mediterranean, as reported in Bianucci et al. (2006). Note that the rectangular insert (which is the study region in the present study) in the northwest Pacific contains no fossil records in the review in Bianucci et al. (2006). (B) Magnified region in the northwest Pacific based on A, showing a further migration path of humpback whales in the north western Pacific based on updated fossil occurrences of Coronula spp. (black circles). Fossil records in Taiwan are based on Buckeridge et al. (2018) and the present study. Okinawa is based in Neomura and Hatai, 1936. Fossils in Honshu, Japan are based on review data in Hatai (1938 1939). The names of locations in Honshu in the present figure are modern names, whereas those names were old names in Hatai (1938 1939): Yamagata is equivalent to Uzen Province, Boso is equivalent to Kazusa Province, Shizuoka is equivalent to Musasi Province, Niigata is equivalent to Etigo Province.

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Fig. 5 in Pampus candidus

Fig. 5. Thin-section photomicrographs of the matrix of fossil barnacle (NTUG110-F000023) (Fig. 3I); (A) specimen with plane-polarized light (PPL); (B) specimen with crossed polars (XPL). It consists of mainly quartz grains and lacks of lithic or slate fragments (see Type I sandstone in Chen et al., 2019). Scales = 0.5 mm.

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Fig. 1 in Pampus candidus

Fig. 1. Occurrences of fossil cetaceans (solid triangles) (modified from Tsai et al. 2013) and whale barnacles (stars) (Hayasaka 1933 1934 1935; Wang and Chen 2007; Buckeridge et al. 2018; this study) in Taiwan.

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Fig. 3 in Pampus candidus

Fig. 3 Cut and polished sections (NTUG110-F000023) of Coronula bifida Bronn, 1831 from Plio-Pleistocene strata in southern Taiwan; (A– D) Studied and figured specimen in Hayasaka (1934: pl. 3, fig. 3); (E–F) Studied and figure specimen in Hayasaka (1934: pl. 3, fig. 4); (I–K) Unpublished slice in the same collection, used for making a thin-section (see Fig. 5A, B). Scale bars = 2 cm.

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Fig. 4 in Pampus candidus

Fig. 4 New photographs of two specimens Coronula bifida Bronn, 1831 illustrated in Hatai (1939) and housed at the Tohoku University Museum of Natural History; (A, B) IGPS63173 (Hatai, 1939: pl. 10, figs. 1-3); (C, D) IGPS63172 (Hatai, 1939: pl. 10, figs. 4,5). Scale bars = 2 cm.

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Fig. 1 in Pampus candidus

Fig. 1. Behavioral testing schedule for experimental females receiving perinatal injections of sesame oil (FC, n = 10) or β-estradiol sesame oil mixtures (FT, n = 10), and experimental males receiving perinatal injections of sesame oil (MC, n = 10). Data were not collected during weeks 2 and 3 during which the animals received sexual/social experience.

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Fig. 3 in Pampus candidus

Fig. 3. Cassiopea xamachana (specimen #2) regenerated, photographed seven months after the appearance of the injury. Aboral (A), oral (B) and lateral (C) views of specimen #2 (ST1-3), and close-ups of the two sets of generated individuals: ST-2 (E) and ST-3 (D). Abbreviations: Av: anastomosing vessels; Bm: bell margin; Di: digitata; Gc: gastrovascular cavity; Ii: Inward invagination; Ma: Mouth arm; Ml: marginal lappet; Oa: oral appendage; Rc: radial canal; Rh: rhopaliar niche; ST-1 original specimen; ST-2 and ST-3: generated individuals.

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Fig. 1. Zoea I in Pampus candidus

Fig. 1. Zoea I of Karstama boholano (Ng, 2002) from western Green Island, Taitung (NTOU 1), new record genus/species in Taiwan. A, lateral view of carapace; B, antennule; C, antenna; D, mandible; E, maxillule; F, maxilla; G, first maxilliped; H, second maxilliped; I, lateral view of abdomen; J, dorsal view of abdomen; K, telson.

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Fig. 3 in Pampus candidus

Fig. 3 Correlations between body length (a) and weight (b) vs. blubber depth. Both the body length and weight vs blubber depth showed statistically significantly positive correlation.

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Fig. 2 in Pampus candidus

Fig. 2 Overall mean blubber depth across age groups (a) and reproductive states (b). Blubber depths across the age groups and reproductive states followed by the same letters were not significantly different.

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Fig. 1 in Pampus candidus

Fig. 1. Positions of blubber thickness measured in the East Asian finless porpoises. The three dots in each dotted line represent the dorsal, lateral and ventral region, respectively. Grey square indicates the position for collection of histological samples.

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Fig. 2 in Pampus candidus

Fig. 2. The original museum label associated with fossil barnacle specimens (NTUG110-F000023).

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Fig. 4 in Pampus candidus

Fig. 4 Cellular measurements across the layers.

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Figure 7 from: Li Y, Liu C, Lin L, Li Y, Xiao J, Loh K-H (2020) Pleistocene isolation caused by sea-level fluctuations shaped genetic characterization of Pampus minor over a large-scale geographical distribution. ZooKeys 969: 137-154. https://doi.org/10.3897/zookeys.969.52069

Figure 7 BSPs showing NefT (Nef = effective population size; T = generation time) changes over time for P. minor based on Cytb sequences. The upper and lower limits of the blue line represent the 95% confidence intervals of highest posterior densities (HPD) analysis. The solid black line represents median estimates of NefT.

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Figure 5 from: Li Y, Liu C, Lin L, Li Y, Xiao J, Loh K-H (2020) Pleistocene isolation caused by sea-level fluctuations shaped genetic characterization of Pampus minor over a large-scale geographical distribution. ZooKeys 969: 137-154. https://doi.org/10.3897/zookeys.969.52069

Figure 5 Matrix of pairwise FST values between 11 P. minor populations based on Cytb sequences. * significant at p < 0.05 by the permutation test, ** extremely significant at p < 0.01 by the permutation test.

opencc-by-4.0Sep 2020View details →

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