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Fig. 7. 2D in Notes on Afonsoconus Tucker & Tenorio, 2013 (Gastropoda, Conidae), with description of a new species from the Southwestern Indian Ocean
Fig. 7. 2D Scatter plot of the discriminant function analysis (DFA) for the species A. kinoshitai (Kuroda, 1956), A. bruuni (Powell, 1958) and A. crosnieri sp. nov. The analysis was performed using shell length (SL) and the shell morphometric parameters MD, HMD and SH as variables, and species hypotheses as factor. Both DF1 and DF2 are statistically significant at the 95% probability level (DF1: 69.9 % relative percent, Wilks lambda = 0.0449, χ2 = 138.085, df = 8, p = 0.0000; DF2: 30.1 % relative percent, Wilks lambda = 0.2946, χ2 = 54.38, df = 3, p = 0.0000).
Fig. 6 in Notes on Afonsoconus Tucker & Tenorio, 2013 (Gastropoda, Conidae), with description of a new species from the Southwestern Indian Ocean
Fig. 6. Distribution map for Afonsoconus crosnieri sp. nov. Red circles indicate the points where the species has been collected.
Fig. 3 in Notes on Afonsoconus Tucker & Tenorio, 2013 (Gastropoda, Conidae), with description of a new species from the Southwestern Indian Ocean
Fig. 3. Bayesian phylogenetic tree. Posterior probabilities (above 0.95) are indicated for each node. Sequences are labelled with the MNHN registration number or the GenBank accession number, and the species name.
Fig. 2. A in Notes on Afonsoconus Tucker & Tenorio, 2013 (Gastropoda, Conidae), with description of a new species from the Southwestern Indian Ocean
Fig. 2. A. Pionoconus fulmen (Reeve, 1843), specimen from Kii Peninsula, Wakayama prefecture, Japan, 51.9 mm (INHS 44603). B. Textilia bullatus (Linnaeus, 1758), specimen from Ua Huka, Baie Kuiapaku, Marquesas Archipelago, 58.1 mm (MNHN IM-2012-20656). C–D. Textilia dusaveli (H. Adams, 1872). C. Specimen from off Balut Island, Mindanao, Philippines, 260 m, 82.1 mm (INHS 44868). D. Radular tooth, specimen from New Caledonia, SL 67.0 mm (MJT). Scale bars = 10 mm, unless otherwise stated.
Fig. 4 in Notes on Afonsoconus Tucker & Tenorio, 2013 (Gastropoda, Conidae), with description of a new species from the Southwestern Indian Ocean
Fig. 4. Afonsoconus crosnieri sp. nov. A–B. Holotype, ventral and dorsal views, 59.6 × 24.8 mm (MNHN IM-2013-62927). C–G. Paratypes. C. Juvenile, 11.9 × 6.0 mm (MNHN IM-2013-62933). D–F. Juvenile, 11.5 × 5.7 mm (MNHN IM-2013-62932). D. Enlargement of the spire. E. Apical view of the spire. F. Shell. G–H. Radular teeth. G. Specimen of 71.0 × 27.4 mm (MNHN IM-2013-62925). H. Holotype. Scale bars = 10 mm, unless otherwise indicated.
Fig. 2 in A new species of Novastoa Finlay, 1926 (Mollusca: Gastropoda: Vermetidae) from coral reefs of the Pacific Ocean
Fig. 2. Novastoa rapaitiensis sp. nov. A–D. Pre-hatching larval shells from egg mass of Fig. 1M. E–F. Operculum of specimen from Rapa Iti (not from the type series). G. SEM image of lateral view of operculum, with lamina stripped away to expose underlying structure (MNHN IM-2000-31684, Rapa Iti Island, French Polynesia). H. SEM image of exterior surface of operculum (MNHN IM-2000-31684, Rapa Iti Island, French Polynesia). I. Radula of specimen from Rapa Iti. L. Central section of radula (MNHN IM-2000-31684, Rapa Iti Island, French Polynesia). M. SEM image of teleoconch sculpture after removal of surrounding substrate (UF 436684, Moorea Island, French Polynesia).
Fig. 1 in A new species of Novastoa Finlay, 1926 (Mollusca: Gastropoda: Vermetidae) from coral reefs of the Pacific Ocean
Fig. 1. Novastoa rapaitiensis sp. nov. A. Living specimens embedded in coral substrate with only apertures and heavily encrusted opercula visible (UF 400847, Moorea Island, French Polynesia, photographs by G. Paulay). B–C. Preserved specimen fractured in plane perpendicular to surface, showing both halves of broken shell and animal embedded in coral (UF 436684, Moorea Island, French Polynesia). D–E. Living specimen from Rapa Iti (MNHN IM-2000-31685) just after extraction from the shell. F. Living specimen embedded in coral that has been fractured in plane perpendicular to surface (UF 400849). – G–L. Lateral views of opercula. G. Operculum from Rapa Iti as photographed in the field just after dissection (not from the type series). H. Operculum from the Moorea Island population, French Polynesia (UF 436684). I. Operculum from the Rapa Iti Island population, French Polynesia (MNHN IM-2000-31684). L. Operculum from the Yonge Reef population, Australia (AM C.464342). – M. Egg capsule after removal from interior shell wall (more developed embryos shown in Fig. 2A–D).
Video S1. Two Ocean Pass South of Yellowstone National Park, Wyoming
<p><strong>Video S1.</strong> <strong>Two Ocean Pass South of Yellowstone National Park, Wyoming.</strong> Two Ocean Pass connects the headwaters of the Atlantic and Pacific drainages in the Bridger-Teton Wilderness of Wyoming south of Yellowstone National Park. Here, a broad alpine meadow straddles the Continental Divide at 2,478 m elevation, and headwaters of the Columbia and Missouri drainages originate from a single perennial stream; North Two Ocean Creek flows along the Continental Divide and branches into Pacific Creek, a Snake River tributary flowing to the west, and Atlantic Creek, a Yellowstone River tributary flowing to the east. The pass is a nearly level meadow near the center of which is a marsh that becomes a small lake in times of wet weather or snowmelt runoff. No barrier prevents the movement and mixing of fish between Pacific Creek and Atlantic Creek. Following glacial recession from the region about 14,000 years ago, ancestral Yellowstone cutthroat trout colonized the Yellowstone River drainage from sources in the lower Snake River drainage over Two Ocean Pass. They dispersed downstream and were the only trout inhabiting Yellowstone Lake for thousands of years prior to the establishment of Yellowstone National Park. The watershed of the Yellowstone River upstream of Yellowstone Lake, including Two Ocean Pass, is among the most remote in the contiguous United States and lies largely within protected federal wilderness. In July 2019, Yellowstone National Park and Wyoming Game and Fish Department biologists, with assistance from Wyoming Trout Unlimited and the Wyoming Storer Foundation, sampled environmental DNA in the connected waters near Two Ocean Pass. The sampling was conducted to determine if invasive lake trout or other nonnative fish were present, and could thereby colonize the Yellowstone River basin in the past or future and threaten native cutthroat trout of Yellowstone Lake.</p>
Fig. 12 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 12. Dorsal view. Colours in life. A. Munida limula Macpherson & Baba, 1993, ♂, 3.4 mm, Madagascar, ATIMO VATAE, Stn TP12. B. Munida mesembria sp. nov., paratype, ♀, 6.5 mm, Mozambique, MAINBAZA, Stn CP3130. C. Munida micra sp. nov., holotype, ♂, 3.7 mm, Mozambique, MAINBAZA, Stn CC3165. D. Munida muscae Macpherson & de Saint Laurent, 2002, ♂, 3.2 mm, Madagascar, MIRIKY, Stn DW3179.
Fig. 11 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 11. Dorsal view. Colours in life. A. Munida africana Balss, 1913, ♀, 10.9 mm, Mozambique, MAINBAZA, Stn CP3141. B. Munida benguela de Saint-Laurent & Macpherson, 1988, ♂, 20.0 mm, Mozambique, MAINBAZA, Stn CP3138. C. Munida benguela de Saint-Laurent & Macpherson, 1988, ♀, 13.7 mm, Mozambique, MAINBAZA, Stn CP3135. D. Munida hoda sp. nov., paratype, ov. ♀, 11.4 mm, Mozambique, MAINBAZA, Stn CC3166.
Fig. 10 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 10. Munidopsis columbae sp. nov., holotype, ♂, 8.7 mm (MNHN-IU-2014-13472), Madagascar. A. Carapace and abdomen, dorsal view. B. Carapace and abdomen, lateral view. C. Sternal plastron, sternites 3 and 4. D. Cephalic region, showing antennular and antennal peduncles, ventral view. E. Right Mxp3, lateral view. F. Right P1, dorsal view. G. Right P2, lateral view. H. Right P3, lateral view. I. Right P4, lateral view. Scale bar: A–B, F–I = 2.0 mm; C–E = 1.0 mm.
Fig. 14 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 14. Dorsal view. Colours in life. A. Paramunida mozambica Cabezas et al., 2011, ♀, 6.0 mm, Mozambique, MAINBAZA, Stn CP3161. B. Bathymunida polae Balss, 1914, ♂, 3.8 mm, Mozambique, MAINBAZA, Stn DW3133. C. Munidopsis africana Balss, 1913, ♂, 7.4 mm, Mozambique, MAINBAZA, Stn CP3142. D. Eumunida minor de Saint Laurent & Macpherson, 1990, ♂, 5.3 mm, Mozambique, MAINBAZA, Stn DW3167.
Fig. 13 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 13. Dorsal view. Colours in life. A. Munida nesiotes Macpherson, 1999, ov. ♀, 8.5 mm, Mozambique, MAINBAZA, Stn CP3143. B. Munida shaula Macpherson & de Saint Laurent, 2002, ov. ♀, 12.4 mm, Mozambique, MAINBAZA, Stn CC3151. C. Munida tetracantha sp. nov., paratype, ♂, 7.4 mm, Mozambique, MAINBAZA, Stn CP3131. D. Paramunida marionis Cabezas et al., 2011, ♀, 6.0 mm, Mozambique, MAINBAZA, Stn CP3143.
Fig. 2 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 2. Munida austrina sp. nov., holotype, ♀, 4.6 mm (MNHN-IU-2014-13478), Mozambique. A. Carapace and abdomen, dorsal view. B. Sternal plastron. C. Cephalic region, showing antennular and antennal peduncles, ventral view. D. Right Mxp3, lateral view. E. Right P1, dorsal view. F. Right P2, lateral view. G. Dactylus of right P2, lateral view. H. Right P3, lateral view. I. Right P4, lateral view. Scale bar: A, E–F, H–I = 1.0 mm; B–D, G = 0.5 mm.
Fig. 1 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 1. Eumunida spiridonovi sp. nov., holotype, ♀, 11.0 mm (MNHN-IU-2016-8715), East of Somalia. A. Carapace, dorsal view. B. Abdomen, dorsal view. C. Sternal plastron, sternites 3 and 4. D. Left antenna and antennula, ventral view. E. Right Mxp3. F. Right P1 merus, dorsal view. G. Right P1 carpus and distal part of merus, ventral view. H. Right P1 palm and fingers, dorsal view. I. Right P1 distal part of palm and fingers, ventral view. J. Right P2. Scale bar: A–C, G, I–J = 2.0 mm; D–E = 1 m; F, H = 0.5 mm.
Fig. 7 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 7. Munida micra sp. nov., holotype, ♂, 3.7 mm (MNHN-IU-2008-10229), Mozambique. A. Carapace and abdomen, dorsal view. B. Sternal plastron. C. Cephalic region, showing antennular and antennal peduncles, ventral view. D. Right Mxp3, lateral view. E. Left P1, dorsal view. F. Left P2, lateral view. G. Dactylus of left P2, lateral view. H. Left P3, lateral view. I. Right P4, lateral view. Scale bar: A–B, E–F, H–I = 1.0 mm; C–D, G = 0.5 mm.
Fig. 3 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 3. Munida cristulata sp. nov., holotype, ♂, 6.1 mm (MNHN-IU-2014-13480), Glorieuses Islands, N of Mayotte Island. A. Carapace and abdomen, dorsal view. B. Sternal plastron. C. Cephalic region, showing antennular and antennal peduncles, ventral view. D. Right Mxp3, lateral view. E. Right P1, dorsal view. F. Right P2, lateral view. G. Right P3, lateral view. H. Right P4, lateral view. Scale bar: A–B, E–H = 1.0 mm; C–D = 0.5 mm.
Fig. 6 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 6. Munida mesembria sp. nov., holotype, ♂, 7.7 mm (MNHN-IU-2014-13477), Mozambique. A. Carapace and abdomen, dorsal view. B. Sternal plastron. C. Cephalic region, showing antennular and antennal peduncles, ventral view. D. Right Mxp3, lateral view. E. Right P1, dorsal view. F. Right P2, lateral view. G. Dactylus of right P2, lateral view. H. Left P3, lateral view. I. Right P4, lateral view. Scale bar: A, E–F, H–I = 2.0 mm; B–D, G = 1.0 mm.
Fig. 9 in New sibling species and new occurrences of squat lobsters (Crustacea, Decapoda) from the western Indian Ocean
Fig. 9. Munida tetracantha sp. nov., holotype, ♂, 6.6 mm (MNHN-IU-2014-13474), Madagascar. A. Carapace and abdomen, dorsal view. B. Sternal plastron. C. Cephalic region, showing antennular and antennal peduncles, ventral view. D. Right Mxp3, lateral view. E. Right P1, dorsal view. F. Right P2, lateral view. G. Dactylus of right P2, lateral view. H. Right P4, lateral view. Scale bar: A, E–F, H = 2.0 mm; B–D, G = 1.0 mm.
Fig. 3 in A new genus and species of axiid shrimp (Crustacea, Decapoda) from a southwestern Indian Ocean seamount
Fig. 3. Montanaxius mediumquod gen. et sp. nov., paratype, ♀, NHMW 25676. A. Front in lateral view. B. Same in dorsal view. C. Major cheliped in lateral view. D. Same, fingers in mesial view. E. Minor cheliped in lateral view. F. Same, fingers in mesial view. G. Second pereopod, lateral view. H. Third pereopod, lateral view. I. Same, detail of distal articles. J. Fourth pereopod in lateral view. K. Fifth pereopod in lateral view. L. Sternites 6–8 in ventral view. M. Telson and right uropods, dorsal view. Setation omitted in A–F. Scale bars: 1 mm.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
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.