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10 results for “Celebes”
Water Body Checklists 2019: Celebes Sea Species List
Species checklists created using effechecka and modified polygons from IHO. The polygons were reduced in resolution.<p></p>List of species collected from the Celebes Sea using effechecka and a modified polygon from the International Hydrographic Association. A filter was applied (based on data from WoRMS) to remove all non-marine taxa.
Water Body Checklists: Celebes Sea Species List
Species checklists created using effechecka and modified polygons from IHO. The polygons were reduced in resolution.<p></p>List of species collected from the Celebes Sea using effechecka and a modified polygon from the International Hydrographic Association. A filter was applied (based on data from WoRMS) to remove all non-marine taxa.
Figure 2 in First inland record of Bull shark Carcharhinus leucas (Müller & Henle, 1839) (Carcharhiniformes: Carcharhinidae) in Celebes, Indonesia
Figure 2. The side view of C.leucas caught on the Pangkajene River, Pangkajene District, South Celebes Province, Indonesia. Photo Q. A. Mubaraq.
Figure 1 in First inland record of Bull shark Carcharhinus leucas (Müller & Henle, 1839) (Carcharhiniformes: Carcharhinidae) in Celebes, Indonesia
Figure 1. Location of known C. leucas collected in inland Indonesia. Green, blue, and yellow shows the previous record from Sumatra, Borneo, and Papua respectively; and red show recent record from Celebes.
Figure 3 in First inland record of Bull shark Carcharhinus leucas (Müller & Henle, 1839) (Carcharhiniformes: Carcharhinidae) in Celebes, Indonesia
Figure 3. The dorsal view of C.leucas caught on the Pangkajene River, Pangkajene District, South Celebes Province, Indonesia. Photo Q. A. Mubaraq.
On following pages: 9. Dusky Palm Squirrel (Funambulus sublineatus); 10. Layard's Palm Squirrel (Funambulus layardi Tufted Pygmy Squirrel (Exilisciurus whitehead); 14. Lowland Long-nosed Squirrel (Hyosciurusileile); 15. Montane Squirrel (Prosciurillus rosenbergii); 18. Celebes Dwarf Squirrel (Prosciurillus murinus); 19. Whitish Dwarf Squirrel alstoni); 22. Weber's Dwarf Squirrel (Prosciurillus weber); 23. Secretive Dwarf Squirrel (Prosciurillus abstrusus). ); 11. Philippine Pygmy Squirrel (Exilisciurus concinnus); 12. Least Pygmy Squirrel (Exilisciurus exilis); 13. Long-nosed Squirrel (Hyosciurus heinrichi); 16. Sulawesi Giant Squirrel (Rubrisciurus rubriventer); 17. Sanghir (Prosciurillus leucomus); 20. Mount Topapu Squirrel (Prosciurillus topapuensis), 21. Alston's Squirrel (Prosciurillus in Sciuridae
On following pages: 9. Dusky Palm Squirrel (Funambulus sublineatus); 10. Layard's Palm Squirrel (Funambulus layardi Tufted Pygmy Squirrel (Exilisciurus whitehead); 14. Lowland Long-nosed Squirrel (Hyosciurusileile); 15. Montane Squirrel (Prosciurillus rosenbergii); 18. Celebes Dwarf Squirrel (Prosciurillus murinus); 19. Whitish Dwarf Squirrel alstoni); 22. Weber's Dwarf Squirrel (Prosciurillus weber); 23. Secretive Dwarf Squirrel (Prosciurillus abstrusus). ); 11. Philippine Pygmy Squirrel (Exilisciurus concinnus); 12. Least Pygmy Squirrel (Exilisciurus exilis); 13. Long-nosed Squirrel (Hyosciurus heinrichi); 16. Sulawesi Giant Squirrel (Rubrisciurus rubriventer); 17. Sanghir (Prosciurillus leucomus); 20. Mount Topapu Squirrel (Prosciurillus topapuensis), 21. Alston's Squirrel (Prosciurillus
Figure 3 in Morphological and molecular characterization of the problematic whip black coral genus Stichopathes (Hexacorallia: Antipatharia) from Indonesia (North Sulawesi, Celebes Sea)
Figure 3. Morphological characteristics of the four Indonesian clades. A–D, clade A. A, spiral or contorted, thin stem. B, C, triangular, laterally compressed, papillose spines. D, light-brown polyps. E, H, clade B. E, contorted, thick stem, with flat and meandritic convolutions. F, G, triangular–conical spines, with few, small apical tubercles, and, at times, basal papillae. H, brown polyps, sagittally compressed. I, L, clade C. I, spiral, thick stem. J, K, triangular–conical spines, with numerous, small apical tubercles and sparse secondary spines. L, dense brown or white polyps, sagittally compressed. M, P, clade D. M, straight, thick stem, several metres long, and often with one or a few lateral branches. N, O, triangular–conical spines, with numerous, small apical tubercles and sparse secondary spines. P, dense brown or white polyps, sagittally compressed. Scale bars: M, 20 cm; A, E, I, 10 cm; D, 5 cm; H, L, P, 0.5 cm; B, F, J, N, 400 Mm; C, G, K, O, 200 Mm.
Figure 4 in Morphological and molecular characterization of the problematic whip black coral genus Stichopathes (Hexacorallia: Antipatharia) from Indonesia (North Sulawesi, Celebes Sea)
Figure 4. SEM photographs showing the variability of the spines in clade A (A–H), clade B (I–P), and clade C (Q–X) (central portions shown). A, E, straight portions of the stem. B, F, curved portions of the stem. C, G, polypar spines. D, H, abpolypar spines. I–J, M–N, curved portions of the stem. K, O, polypar spines. L, M, abpolypar spines. Q–R, U–V, curved portions of the stem. S, W, polypar spines. T, X, abpolypar spines. Scale bar: A, C, E, F, I, J, M, N, Q, R, U, and V, 250 Mm; K, L, O, P, S, T, W, and X, 100 Mm; C, D, G, and H, 50 Mm.
Figure 5 in Morphological and molecular characterization of the problematic whip black coral genus Stichopathes (Hexacorallia: Antipatharia) from Indonesia (North Sulawesi, Celebes Sea)
Figure 5. SEM photographs showing the variability of the spines in clade D. A–L, central portions of several specimens, with close-up views of the spines. M, N, apical portions of two specimens. Scale bars: A, D, E, F, G, H, J, L, and M, 1 mm; C, K, and N, 500 Mm; I, 200 Mm; B, 100 Mm.
Figure 2 in Morphological and molecular characterization of the problematic whip black coral genus Stichopathes (Hexacorallia: Antipatharia) from Indonesia (North Sulawesi, Celebes Sea)
Figure 2. Phylogenetic tree obtained by Bayesian inference, based on internal transcribed spacer rDNA of 45 antipatharian specimens, and with the scleractinian coral Porites lutea as the out-group. The numbers on the left represent the posterior probabilities (> 95). The maximum parsimony tree (length, 975 steps; consistency index, CI, 0.711; and retention index, RI. 0.874) shows identical topology, and the numbers on the right represent the bootstrap estimated values (> 50).
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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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