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1,088 results for “Bivalves”
Fig. 12 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 12. Second-stage larva of Ascaridomorpha sp. (Nematoda) infecting Villosa nebulosa, in lateral view. Posterior end of body showing anus (a), rectal glands (rg).
Fig. 7 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 7. Uninfected intestine of Villosa nebulosa showing ciliated columnar epithelium (ce), and connective tissue (ct).
Fig. 2 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 2. Ventral portion of infected foot of Villosa nebulosa showing a nematode infection (ne), myofibers (mf), basophilic granulocytes (bg), and pedal epithelium (pe).
Fig. 10 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 10. Second-stage larva of Ascaridomorpha sp. (Nematoda) infecting Villosa nebulosa, in lateral view. Anterior end of body showing lips (l), pharynx (p), and esophagus (es).
Fig. 1 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 1. Ventral portion of an uninfected foot of Villosa nebulosa showing myofibers (mf), basophilic granulocytes (bg), and pedal epithelium (pe).
Fig. 13 in Pathobiology and first report of larval nematodes (Ascaridomorpha sp.) infecting freshwater mussels (Villosa nebulosa, Unionidae), including an inventory of nematode infections in freshwater and marine bivalves
Fig. 13. Phylogenetic interrelationships of nematodes (Cosmocercoidea, Seuratoidea) based on sequences of the 18S rDNA, generated from Bayesian inference. Nodal supports were estimated by Bayesian posterior probability (BPP) after running the Markov chain Monte Carlo (2 runs 4 chains, 4 × 106 generations, sampling frequency = 4 × 103, burn-in = 1 × 106). Sequence obtained in the present study is in bold.
Figure 2 in New distributional record of marine bivalve, Hiatula diphos (Linnaeus, 1771) (Bivalvia: Cardiida: Psammobiidae) from the Andaman Islands, India
Figure 2. (a, b) Hiatula diphos (Linnaeus, 1771) exterior view and interior view respectively (scale bar- 10 mm)
Figure 4 in The microplastic pattern in Turkish lakes: sediment and bivalve samples from Çıldır Lake Almus Dam Lake, and Kartalkaya Dam Lake
Figure 4. Abundance (a), polymer characterization (b), and shape (c) of microplastics collected from sediment samples from three lakes.
Figure 2 in The microplastic pattern in Turkish lakes: sediment and bivalve samples from Çıldır Lake Almus Dam Lake, and Kartalkaya Dam Lake
Figure 2. Evaluation of the extracted microplastics (MPs) from sediments and mussels. a) Appearance of MPs under a fluorescence microscope using Nile Red fluorescent dye, b) FTIR spectrums of MPs, and c) appearance of MPs under a stereo microscope.
Figure 3 in The microplastic pattern in Turkish lakes: sediment and bivalve samples from Çıldır Lake Almus Dam Lake, and Kartalkaya Dam Lake
Figure 3. Characterization of microplastics (MPs) obtained from sediments and mussel samples. The upper panel is the shape, the middle is the polymer type, and the lower panel is the MPs' size.
Figure 1 in The microplastic pattern in Turkish lakes: sediment and bivalve samples from Çıldır Lake Almus Dam Lake, and Kartalkaya Dam Lake
Figure 1. Sampling area. Red circles represent the locations of the lakes where sediments and mussels were collected.
Figure 4 in The global freshwater bivalve checklist's extension: Freshwater occurrences and phylogenetic position of Galatea clams from West Africa (Venerida: Donacidae)
Figure 4. Shells of Galatea paradoxa from freshwater section of Niger River, Nigeria (sample RMBH biv1086, Yenagoa). Scale bar = 10 mm. (Photos: Ilya V. Vikhrev).
Figure 3 in The global freshwater bivalve checklist's extension: Freshwater occurrences and phylogenetic position of Galatea clams from West Africa (Venerida: Donacidae)
Figure 3. Shells of Galatea schwabi from Sanaga River, Cameroon. (A-B) Topotypes RMBH biv800, Mouanko (lower reaches, slightly brackish section). (C-D) Specimens RMBH biv801, Monatélé (middle reaches, freshwater section). Red arrows show well-developed muscle attachment scars. Scale bar = 10 mm. (Photos: Artem A. Lyubas).
Figure 5 in The global freshwater bivalve checklist's extension: Freshwater occurrences and phylogenetic position of Galatea clams from West Africa (Venerida: Donacidae)
Figure 5. Maximum likelihood (IQ-TREE) phylogeny of Bivalvia (Venerida and Adapedonta) based on the COI gene sequences (Table 1). A Galatea member is dark red. Scale bar indicates the branch lengths (substitutions per site). Black numbers near nodes indicate the ultrafast bootstrap support (BS) values.
Figure 1 in The global freshwater bivalve checklist's extension: Freshwater occurrences and phylogenetic position of Galatea clams from West Africa (Venerida: Donacidae)
Figure 1. Occurrences of Galatea schwabi (red stars) and Galatea paradoxa (light green stars). The locality data is given in Table 2. Freshwater basins are colored as follows: Sanaga (1), Cross (2), Niger (3), and Volta (4). The red dash indicates the Edea Hydroelectric Power Station's dam on the Sanaga River. (Map: Mikhail Y. Gofarov).
Figure 1 in First record of Sinanodonta woodiana and report for freshwater bivalves from Iraq (Mollusca: Bivalvia: Unionidae)
Figure 1. Sinanodonta woodiana from Iraq. (a) Right valve of a live specimen with a total shell length 14 cm and shell height 8 cm. (b) Dorsal view of specimen with the umbo sculpture composed of parallel bars, characteristic of Sinanodonta woodiana. Total shell length was 14 cm. (Photos: Dr. Al- Fanharawi).
Fig. 2 in The Invasive Caribbean Bivalve Mytilopsis Sallei (Dreissenidae) Introduced To Singapore And Johor Bahru, Malaysia
Fig. 2. Percentage frequency histograms of live (filled bars) and dead (white bars) Mytilopsis size classes at ten localities in Singapore and Johor Bahru and arranged in order of increasing salinity. Size was measured as either shell length (living individuals) or right valves only (dead individuals). The largest individual recorded was 29 mm long. See Table 1 for sample sizes.
Fig. 1 in The Invasive Caribbean Bivalve Mytilopsis Sallei (Dreissenidae) Introduced To Singapore And Johor Bahru, Malaysia
Fig. 1. Occurrence of Mytilopsis sallei in Singapore and Johor Bahru. Open and closed dots represent localities where Mytilopsis was either absent or present, respectively. Location numbers correspond to those provided in Table 1, which are arranged in order of increasing salinity. Open and closed triangles denote locations as reported upon earlier (Sachidhanandam & Chou, 1996) and where Mytilopsis was also either absent or present, respectively. Two other localities where Mytilopsis occurs are represented by a closed square (Punggol Park; see Chan, 1997) and an asterisk (Geylang Canal; pers. obs.). Abbreviations: a–West Johor Straits; b–Sungei Buloh; c–Pulau Tekong; d–Kallang Basin; e–Singapore River; f–Pulau Semakau.
Figure 1 in Additional records of marine bivalves from Iraq, with a provisional checklist for the marine bivalves of Iraq
Figure 1. Marine bivalves from the Iraqi coast: A, Didimacar tenebrica, B, Aspidopholas obtecta, C, Neotrapezium sublaevigatum, and D, Barbatia trapezina.
Figure 2 in Additional records of marine bivalves from Iraq, with a provisional checklist for the marine bivalves of Iraq
Figure 2. Habitats of marine bivalves from the Iraqi coast: A, Aspidopholas obtecta and B, Barbatia trapezina.
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Allen Brain Atlas
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International Brain Laboratory public data
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OpenNeuro
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