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FIGURE 3. Amber piece 2 in Further records of Amphipoda from Baltic Eocene amber with first evidence of prae-copulatory behaviour in a fossil amphipod and remarks on the taxonomic position of Palaeogammarus Zaddach, 1864
FIGURE 3. Amber piece 2, individuals of Synurella indicated with letters (scale bar in mm).
FIGURE 9 in Further records of Amphipoda from Baltic Eocene amber with first evidence of prae-copulatory behaviour in a fossil amphipod and remarks on the taxonomic position of Palaeogammarus Zaddach, 1864
FIGURE 9. Palaeogammarus debroyeri sp. nov., sketch of the pair in prae-copula.
FIGURE 11 in Further records of Amphipoda from Baltic Eocene amber with first evidence of prae-copulatory behaviour in a fossil amphipod and remarks on the taxonomic position of Palaeogammarus Zaddach, 1864
FIGURE 11. Synurella aliciae sp. nov.: a) habitus of specimen A, b) posterior part of specimen B.
FIGURES 18–19 in Chaetotaxy of Neotropical Cyphoderus caetetus sp. nov. with comments on the taxonomic position of Cyphoderinae within Paronellidae (Collembola, Entomobryoidea)
FIGURES 18–19. Cyphoderus caetetus sp. nov.: 18, ventral tube chaetotaxy; 19, dens and mucro.
FIGURES 12 in Chaetotaxy of Neotropical Cyphoderus caetetus sp. nov. with comments on the taxonomic position of Cyphoderinae within Paronellidae (Collembola, Entomobryoidea)
FIGURES 12. Cyphoderus caetetus sp. nov.: body chaetotaxy, left side.
FIGURE 8 in Phanoceroides Hinton, 1939: description of new species, morphology of larvae, and revised taxonomic position of the genus (Coleoptera: Elmidae) based on molecular evidence
FIGURE 8. Distribution map, showing collection localities of Phanoceroides fernandesi sp. n.
FIGURE 1 in Phanoceroides Hinton, 1939: description of new species, morphology of larvae, and revised taxonomic position of the genus (Coleoptera: Elmidae) based on molecular evidence
FIGURE 1. Habitus of Phanoceroides species: a) P. aquaticus Hinton, 1939; b) P. fernandesi sp. n.
FIGURE 1 in Taxonomic position of Eothenomys wardi (Arvicolinae: Cricetidae) based on morphological and molecular analyses with a detailed description of the species
FIGURE 1. Collection localities of samples of Oriental voles sequenced in this work.
Figure 7 in Taxonomic position of and generic distinction between Parepactophanes Kunz, 1935 and Taurocletodes Kunz, 1975 (Copepoda, Canthocamptidae incertae sedis), with description of a new species from the Black Sea
Figure 7. Taurocletodes tumenae sp. nov. Male. A, urosome, dorsal. B, urosome, ventral. C, aberrant P5 (supernumerary inner spine arrowed).
Figure 3 in Taxonomic position of and generic distinction between Parepactophanes Kunz, 1935 and Taurocletodes Kunz, 1975 (Copepoda, Canthocamptidae incertae sedis), with description of a new species from the Black Sea
Figure 3. Taurocletodes tumenae sp. nov. Female. A, rostrum and proximal segments of left antennule, dorsal. B, antennule, anterior. C, antenna, outer lateral. D, antennary endopod, medial. E, mandible. F, mandibular gnathobase. G, maxillule, posterior. H, maxilliped.
Figure 1 in Taxonomic position of and generic distinction between Parepactophanes Kunz, 1935 and Taurocletodes Kunz, 1975 (Copepoda, Canthocamptidae incertae sedis), with description of a new species from the Black Sea
Figure 1. Taurocletodes tumenae sp. nov. A, habitus ♂, dorsal. B, habitus ♂, lateral. C, habitus ♀, dorsal. D, habitus ♀, lateral.
Figure 6 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 6 Morphological characteristics of Macrobrachium rostrolevatus sp. nov. (A, B, D–I ovigerous female holotype CUMZ MP00323 C ovigerous female specimen MUMNH MP00338.1) A lateral view B carapace C rostral variation D epistome E second pereiopod F teeth between fingers G third pereiopod H uropod and I movable spine at uropodal diaeresis. Scale bars: 1 mm.
Figure 5 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 5 Morphological characteristics of Macrobrachium panhai sp. nov. (A, F ovigerous female paratype MUMNH MP00303 B–E, G–H ovigerous female holotype CUMZ MP00302) A lateral view B carapace C epistome D second pereiopod E teeth between fingers F third pereiopod G uropod and H movable spine at uropodal diaeresis. Scale bars: 1 mm.
Figure 4 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 4 Morphological characteristics of Macrobrachium lanchesteri (A female topotype MUMNH MP00218 B–H female topotype MUMNH MP00216.1) A lateral view B carapace C epistome D second pereiopod E teeth between fingers F third pereiopod G uropod and H movable spine at uropodal diaeresis. Scale bars: 1 mm.
Figure 2 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 2 Phylogenetic tree based on a concatenation of COI and 16S genes. Nodes of a phylogenetic tree marked with a black circle indicate statistical support from both ML and BI (≥ 70 bootstrap values and ≥ 0.95 posterior probability scores). A white circle indicates statistical support for either ML or BI. An asterisk indicates the topotype in M. lanchesteri and holotype in the new species.
Figure 3 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 3 Living habit of specimens of three Macrobrachium species A, BM. lanchesteri from Bang Khiat, Singhanakhon, Songkhla, Thailand C, DM. rostrolevatus sp. nov. from Bueng Khong Long, Bueng Kan, Thailand EM. panhai sp. nov. from Sri Nakarin Dam, Tha Kradan, Si Sawat, Kanchanaburi, Thailand. Scale bars: 1 cm.
Figure 1 from: Chaowvieng A, Sutcharit C, Chanabun R, Srisonchai R, Jeratthitikul E, Siriwut W (2024) Molecular phylogeny and taxonomic position of Macrobrachium lanchesteri (De Man, 1911), with descriptions of two new species from Thailand (Decapoda, Caridea, Palaemonidae). ZooKeys 1190: 163-193. https://doi.org/10.3897/zookeys.1190.113898
Figure 1 Distribution map of three Macrobrachium species in Thailand. A colour symbol indicates the locality of specimen used in phylogenetic analyses. A transparent symbol indicates the locality of specimen examined based on morphology. Equivalent symbols, whether coloured or not, indicate the same species.
Figure 3 from: Turanov SV, Smirnov AV, Kartavtsev YuPh (2024) Taxonomic position of holothurian Eupentacta fraudatrix (Echinodermata, Holothuroidea). ZooKeys 1197: 237-248. https://doi.org/10.3897/zookeys.1197.117752
Figure 3 SEM photomicrographs of the body wall ossicles of Eupentacta species A–DE. quinquesemita, Mendocino, California (holotype, Museum of Comparative Zoology at Harvard University) A basket B knobbed plate C fenestrated hollow ellipsoid D very large scale-like multilayer plate E, FE. pseudoquinquesemita, Kodiak Island, Shelikof Strait, Uyak Bay, Heard of Larson's Inlet, Alaska (paralectotype, United States National Museum E2288) E basket F irregular plate with tubercles rising above G, HE. fraudatrix, Peter the Great Bay, Vostok Bay, Russia G plate with oval disk with four holes and a handle-like arch between the two holes in the longitudinal axis (underdeveloped table with modified 2-pillared spire?) H plate with small elevation in the center. Scale bars: 10 µm (A, B, E, G); 30 µm (F, H); 100 µm (C, D).
Figure 2 from: Turanov SV, Smirnov AV, Kartavtsev YuPh (2024) Taxonomic position of holothurian Eupentacta fraudatrix (Echinodermata, Holothuroidea). ZooKeys 1197: 237-248. https://doi.org/10.3897/zookeys.1197.117752
Figure 2 Part of the calcareous ring of Eupentacta fraudatrix. RDIR, right dorsal interradial plate; RVR, right ventral radial plate; RVIR, right ventral interradial plate; MVR, medioventral radial plate; LVIR, left ventral interradial plate; LVR, left ventral radial plate (from Baranova 1971).
Figure 1 from: Turanov SV, Smirnov AV, Kartavtsev YuPh (2024) Taxonomic position of holothurian Eupentacta fraudatrix (Echinodermata, Holothuroidea). ZooKeys 1197: 237-248. https://doi.org/10.3897/zookeys.1197.117752
Figure 1 Co-phylogram plot showing relationships of the genera Eupentacta and Sclerodactyla, with related holothurians, as inferred from a phylogenetic analysis of the COI (left) and 16S rRNA (right) gene sequences. The trees were rooted at a midpoint. The numerals at the nodes are nonparametric bootstrap test (NJ, ML) and a posteriori probability (BI, %) values (the order is NJ/ML/BI). The dotted line connects the identifiers of the sequences from the same specimen. The sequences obtained in the present study are indicated with bold letters. The scale on the left and right bottom shows the relative length of branches in two gene trees.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.