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259 results for “synapomorphy”
FIGURE 5 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 5. Enhydrosoma apimelon sp. nov., line drawings, A-C, paratype ♀10; D, paratype ♂5: A, urosome, ventral; B, anal somite and caudal rami, dorsal; C, anal somite and right caudal ramus, lateral; D, urosome, ventral.
FIGURE 4 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 4. Enhydrosoma apimelon sp. nov., SEM photographs, A-E, paratype ♂2; F & G, paratype ♂3; H, paratype ♂4: A, habitus, ventral; B, last two urosomites and caudal rami, ventral; C, fifth and sixth legs, anterior; D, right antennula, ventral. E, left antennula, ventral (distal part broken off); F, left antennula, ventral; G, rostrum, antero-ventral; H, antenna, ventral.
FIGURE 3 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 3. Enhydrosoma apimelon sp. nov., SEM photographs, A & B, paratype ♀7; C & D, paratype ♀8; E & F, paratype ♀9; G & H, paratype ♂1: A, habitus, dorsal; B, cephalic shield, dorsal; C, tergites of third and fourth pedigerous somites, dorsal; D, anal operculum and anterior part of caudal rami, dorsal; E, rostrum and antennula, ventral; F, first swimming leg, anterior; G, habitus, dorsal. H, left antennula, dorsal.
FIGURE 7 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 7. Enhydrosoma apimelon sp. nov., line drawings, A-G & J, paratype ♂5; H & I, paratype ♀10: A, antennula without armature, ventral; B, first segment of antennula, ventral; C, second segment of antennula, ventral; D, third segment of antennula, ventral; E, fourth segment of antennula, ventral; F, fifth segment of antennula, ventral; G, sixth segment of antennula, ventral; H, mandible, posterior; I, maxilla, anterior; J, fifth leg, anterior.
FIGURE 2 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 2. Enhydrosoma apimelon sp. nov., SEM photographs, A-F, paratype ♀4; G, paratype ♀5; H, paratype ♀6: A, habitus, ventral; B, caudal rami, ventral; C, fifth leg, anterior; D, fifth leg, detail of endopodal peduncle, anterior; E, fifth leg, apical part of exopod, anterior; F, mouth appendages, ventral; G, anal somite and caudal rami, lateral; H, antenna and mouth appendages, ventral.
FIGURE 1 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 1. Enhydrosoma apimelon sp. nov., SEM photographs, A-F, paratype ♀1; G, paratype ♀2; H, paratype ♀3: A, habitus, lateral; B, cephalic shield, lateral; C, posterior-distal corner of cephalic shield, lateral; D, antennula, lateral; E, mouth appendages, lateral; F, anal somite and caudal rami, lateral; G, anal somite and caudal rami, latero-posterior; H, anal somite and caudal rami, posterior.
FIGURE 17 in Concordance between molecular and morphology-based phylogenies of Korean Enhydrosoma (Copepoda: Harpacticoida: Cletodidae) highlights important synapomorphies and homoplasies in this genus globally
FIGURE 17. Enhydrosoma kosmetron sp. nov., SEM photographs, A-C, paratype ♂2; D-H, paratype ♂3: A, habitus, ventral; B, maxilla, ventral; C, anal somite and caudal rami, ventral; D, rostrum and left antennula, ventral; E, antenna, ventral; F, mouth appendages, ventral; G, first swimming leg, anterior; H, fifth and sixth legs, anterior.
Fig. 11. A in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 11. A. Cteniogaster toxarchus gen. et sp. nov. Tip of male palp, ventral view. B-D. Cteniogaster hexomma sp. nov. B. Tip of male palp, ventral view. C. Tip of male tarsus IV, retrolateral view. D. Bent male tarsus IV. E. Cteniogaster toxarchus gen. et sp. nov., tip of male tarsus IV. F. Apostenus spinimanus (Koch & Berendt, 1854), tip of male tarsus IV. G. Apostenus fuscus Westring, 1851, tip of male tarsus IV. H. Arabelia pheidoleicomes Bosselaers, 2009, tip of female tarsus IV. Scale bars: D = 200 μm; A-C, E-G = 100 μm. Abbreviations: C = conductor; E = embolus; MA = median apophysis.
Fig. 8 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 8. SEM pictures of female genitalia. A-C. Cteniogaster conviva sp. nov. A. Dorsal view, arrow indicates perforations. B. Detail of previous. C. Idem, seen at different angle. D-F. Cteniogaster toxarchus gen. et sp. nov. D. Dorsal view. E. Detail of other specimen, arrow indicates perforations. F. Detail of previous. G-H. Cteniogaster hexomma sp. nov. G. Dorsal view, arrow indicates peforations. H. Detail of previous. Scale bars = A, D, G-H = 50 µm; B, C = 10 µm; E = 20 µm; F = 5 µm.
Fig. 10 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 10. Cteniogaster hexomma sp. nov. A. ♂, habitus, dorsal view. B. Idem, abdomen, ventral view. C. Idem, palp, ventral view. D. Idem, retrolateral view. E. Epigyne, ventral view. F. ♀, carapace, anterior view. Scale bars: A-B, F = 0.5 mm, C-E = 0.25 mm.
Fig. 6 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 6. Cteniogaster hexomma sp. nov. A. ♂, carapace, dorsal view. B. Detail of previous. C. ♀, setae on venter of abdomen. D. ♂, group of modified setae on venter of abdomen. E. Detail of previous. F. Detail of seta surrounding patch of modified setae. G. ♀, trichobothrium on tibia I. H. ♀, tarsal claws leg I. I. ♀, tarsal organ leg I. Scale bars: A = 0.5 mm; D = 50 μm; B, H = 20 μm; C, E = 10 μm; F, G, I = 5 μm.
Fig. 5. Female genitalia, dorsal view. A, C, E in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 5. Female genitalia, dorsal view. A, C, E: cleared in methyl salicylate. A-B. Cteniogaster conviva sp. nov. C-D. Cteniogaster sangarawe sp. nov. E-F. Cteniogaster taxorchis sp. nov. Scale bars = 0.1 mm.
Fig. 14. Distribution maps. A in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 14. Distribution maps. A. Cteniogaster hexomma sp. nov. (●), C. toxarchus gen. et sp. nov. (*). B. Cteniogaster lampropus sp. nov. (▲), C. nana sp. nov. (○). C. Cteniogaster taxorchis sp. nov. (□), C. conviva sp. nov. (■), C. sangarawe sp. nov. (Δ).
Fig. 4. Female genitalia, ventral view. A, C, E in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 4. Female genitalia, ventral view. A, C, E: cleared in methyl salicylate. A-B. Cteniogaster toxarchus gen. et sp. nov. C-D. Cteniogaster hexomma sp. nov. E-F. Cteniogaster lampropus sp. nov. Scale bars = 0.1 mm.
Fig. 2. A-D in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 2. A-D. Cteniogaster conviva sp. nov. A. ♂, habitus dorsal view. B. Idem, ventral view. C. ♀, habitus, dorsal view. D. Idem, ventral view. E-H. Cteniogaster toxarchus gen. et sp. nov. E. ♂, habitus dorsal view. F. Idem, ventral view. G. ♀, habitus, dorsal view. H. Idem, ventral view. I-P. Cteniogaster hexomma sp. nov. I. ♀, prosoma, dorsal view. J. Idem, habitus, dorsal view. K. Idem, abdomen, ventral view. L. Idem, habitus, ventral view. M. Idem, ♂, habitus, dorsal view. N. Idem, prosoma, dorsal view. O. Idem, habitus, ventral view. P. Idem, abdomen, ventral view. Scale bars: A-O = 0.5 mm; P = 0.2 mm.
Fig. 7 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 7. Cteniogaster hexomma sp. nov. A-D. ♀. A. Spinnerets, posterior view. B. ALS. C. PLS. D. PMS. E-F. ♂. E. Spinnerets, posterior view. F. PLS + PMS. Scale bars: A, E-F = 50 μm; C-D = 20 μm; B = 10 μm.
Fig. 3. A-B in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 3. A-B. Cteniogaster sangarawe sp. nov. A. ♀, habitus, ventral view. B. Idem, dorsal view. C-D. Cteniogaster taxorchis sp. nov. C. ♀, prosoma, dorsal view. D. Idem, ventral view. E-G. Cteniogaster nana sp. nov. E. ♂, habitus, ventral view. F. Idem, abdomen, ventral view. G. Idem, habitus, dorsal view. H-J. Cteniogaster lampropus sp. nov. H. ♀, prosoma, dorsal view. I. Idem, habitus, dorsal view. J. Idem, ventral view. Scale bars: A-D, F-J = 0.5 mm; E = 0.2 mm.
Fig. 13 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 13. Map showing all localities of georeferenced Liocranidae in the collections of MRAC: Cteniogaster gen. nov. (●), all other Liocranidae (○) (n = 315).
Fig. 9 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 9. Cteniogaster toxarchus gen. et sp. nov. A. ♂, habitus, dorsal view. B. Idem, abdomen, ventral view. C. Idem, palp, ventral view. D. Idem, retrolateral view. E. Epigyne, ventral view. F. ♀, carapace, lateral view. G. ♂, carapace, lateral view. H. ♀, carapace, dorsal view. Scale bars: A-C, F-H = 0.5 mm, C-E = 0.25 mm.
Fig. 6 in Studies in Liocranidae (Araneae): a new afrotropical genus featuring a synapomorphy for the Cybaeodinae
Fig. 6. Cteniogaster hexomma sp. nov. A. ♂, carapace, dorsal view. B. Detail of previous. C. ♀, setae on venter of abdomen. D. ♂, group of modified setae on venter of abdomen. E. Detail of previous. F. Detail of seta surrounding patch of modified setae. G. ♀, trichobothrium on tibia I. H. ♀, tarsal claws leg I. I. ♀, tarsal organ leg I. Scale bars: A = 0.5 mm; D = 50 μm; B, H = 20 μm; C, E = 10 μm; F, G, I = 5 μm.
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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
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.