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93 results for “Abes”
Figure 1 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 1 Diagrams of the mouthparts of adult horned beetles. A from an oblique anterior side of a Trypoxylusdichotomus male B from an oblique anterior side of a T.dichotomus female; names of mouthparts were omitted C View from an oblique ventral side of T.dichotomus male D diagram of two types of adult mandible tips; left, the tip of the left mandible of a T.dichotomus male from the left side; this tip does not branch off; right, the tip of a left mandible of a Dynasteshercules male from the left side; this tip branches off and is forked.
Figure 6 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 6 Gear-like structures on mandibles of adult horned beetles. To show the mandibular gear-like structure, the head was split along the anterior midline, and the mandibles were laid out and viewed from the inside. A Mandibles of a T.dichotomus male adult B diagram of structures in Fig. 6A; gear-like structures are shown as stipple. Arrows indicate the tip of each tooth. Scale bar: 2 mm.
Figure 2 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 2 Measurements of mandible strengths of break resistance. AT.dichotomus horns were fixed in a small vice B wire was hung on the tip of the mandible.
Figure 5 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 5 Engagement of gear-like structures on mandibles of D.hercules during opening and closing; engaged regions of mandibles were exposed using a file. A Lateral view of the head from the left side; dotted lines indicate the position of the transverse section B interior view of the head from the ventral side C diagram of the engagement region; gear-like structures are emphasized by stipple. Abbreviations: R = right compound eye; L = left compound eye. Scale bar: 7 mm.
Figure 8 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 8 Mandibles and labium of D.hercules; engaged regions of mandibles were exposed using a file. A Interior view of the male head from the dorsal side; arrows indicate projections from the labium into the mouth cavity B lateral view of labium from the left side; arrows indicate projections into the mouth cavity.
Figure 7 from: Ichiishi W, Shimada S, Motobayashi T, Abe H (2019) Completely engaged three-dimensional mandibular gear-like structures in the adult horned beetles: reconsideration of bark-carving behaviors (Coleoptera, Scarabaeidae, Dynastinae). ZooKeys 813: 89-110. https://doi.org/10.3897/zookeys.813.29236
Figure 7 Load strengths of mandibles from a T.dichotomus adult male. Abbreviations: Right = right mandible; Left = left mandible. Intact = right and left mandibles in the intact state; Broken = the gear-like structure was broken before the measurement. Vertical bars indicate standard errors of the mean (SE). Significant differences between mandible break-resistance strengths are indicated by different letters (a, b; Tukey, p < 0.05).
Figure 4 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 4 Anagrusrugmanjonesi sp. n. female: a fore and hind wings (holotype) b fore wing (paratype from Takaoka, Miyazaki City, Miyazaki Prefecture, Kyushu Island) c fore wing (paratype from Kitakata, Nobeoka City, Miyazaki Prefecture, Kyushu Island) d mesosoma (paratype from Takaoka).
Figure 3 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 3 Anagrusrugmanjonesi sp. n. female: a holotype habitus b holotype antenna c metasoma (paratype from Kitakata, Nobeoka City, Miyazaki Prefecture, Kyushu Island).
Figure 6 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 6 Stethyniumempoascae female (from Kitakata, Nobeoka City, Miyazaki Prefecture, Kyushu Island): a antenna b mesosoma and metasoma c fore and hind wings.
Figure 5 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 5 Anagrusrugmanjonesi sp. n. male (paratypes from Miyazaki Prefecture, Kyushu Island, Japan: a–c, Kitakata, Nobeoka City; d, Takaoka, Miyazaki City): a antenna b mesosoma c genitalia d fore and hind wings.
Figure 2 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 2 Anagrusrugmanjonesi sp. n. female: a habitus of dry-mounted specimen (paratype from Takaoka, Miyazaki City, Miyazaki Prefecture, Kyushu Island) b slide (holotype).
Figure 1 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 1 Empoasca (Matsumurasca) onukii adult feeding on a tea leaf (Miyazaki Prefecture, Kyushu Island).
Figure 7 from: Triapitsyn SV, Adachi-Hagimori T, Rugman-Jones PF, Barry A, Abe A, Matsuo K, Ohno K (2019) Egg parasitoids of the tea green leafhopper Empoasca onukii (Hemiptera, Cicadellidae) in Japan, with description of a new species of Anagrus (Hymenoptera, Mymaridae). ZooKeys 836: 93-112. https://doi.org/10.3897/zookeys.836.32634
Figure 7 Relationship of Anagrusrugmanjonesi sp. n. with other member of the A.incarnatus species complex, based on a 587 bp fragment of COI. Optimal unrooted NJ tree with the sum of branch length = 0.27005784. The percentage of replicate trees in which the associated taxa clustered together in the bootstrap test (1000 replicates) are shown next to the branches and the tree is drawn to scale, with branch lengths indicating uncorrected p-distance.
Figure 6 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 6 Rhododendron sohayakiense var. sohayakiense. A Flower, side view B Stamen C Pistil D Fruit E Abaxial and F adaxial sides of leaf. Scale bars: 1 mm (A–D); 3 mm (E, F). Drawings by Kumi Hamasaki from Y. Watanabe & M. Takahashi Ttj02 (holotype, TNS).
Figure 8 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 8 Rhododendron sohayakiense var. koreanum. A Flower, side view B Stamen C Pistil D Fruit E Abaxial and F adaxial sides of leaf. Scale bars: 1 mm (A–D); 3 mm (E, F). Drawings by Kumi Hamasaki from Y. Watanabe, S. Hwang and N. Yun Wol01 (holotype, TNS).
Figure 4 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 4 Neighbor-net for members of the Rhododendron tschonoskii alliance reconstructed from p-distance among individuals based on RAD-seq.
Figure 7 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 7 Rhododendron sohayakiense var. kiusianum. A Flower, side view B Stamen C Pistil D Fruit E Abaxial and F adaxial sides of leaf. Scale bars: 1 mm (A–D); 3 mm (E, F). Drawings by Kumi Hamasaki from Y. Watanabe Mks04 (holotype, TNS).
Figure 1 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 1 Photographs of flowers and leaves for the new taxa described in this study. A, BRhododendron sohayakiense var. sohayakiense, Mt. Tsutsujo, Ehime Prefecture, Japan C, DRhododendron sohayakiense var. kiusianum, Mt. Mukousaka, Kumamoto Prefecture, Japan E, FRhododendron sohayakiense var. koreanum, Mt. Wolbong, Gyeongsangnam-do, South Korea. Photographs by Yoichi Watanabe.
Figure 3 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 3 Comparative phylogenies for A haplotypes based on chloroplast DNA sequences and B genotypes based on restriction site associated DNA sequences (RAD-seq). Bootstrap probabilities (> 70%) are shown above nodes. Gray boxes indicate three new taxa described in this study and light gray boxes indicate the other members of the Rhododendron tschonoskii alliance.
Figure 5 from: Yoichi W, Minamitani T, Oh S-H, Nagano AJ, Abe H, Yukawa T (2019) New taxa of Rhododendron tschonoskii alliance (Ericaceae) from East Asia. PhytoKeys 134: 97-114. https://doi.org/10.3897/phytokeys.134.38216
Figure 5 Distribution of the Rhododendron tschonoskii alliance. Circles and squares showed locations of herbarium specimens (KYO, TNS).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.