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FIG. 2. — Igornichthys bohemicus n in A new actinopterygian species of Igornichthys Heyler, 1972 from the Permian of the Krkonoše Piedmont Basin (Bohemian Massif, Czech Republic), and its relationship to the actinopterygians of other European Permo- Carboniferous basins
FIG. 2. — Igornichthys bohemicus n. sp., outprint of the skull in left lateral view, holotype MHK 30866. The outlines of the bones, which are ill-defined, are marked with dashed lines. Abbreviations: see Methods. Scale bar: 5 mm.
Figure 9 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 9. Amphiglena nishii sp. nov. SEM preparation, paratype, AM W30485. (A) Whole specimen, ventral view; (B) anterior segments and base of crown, ventral view; (C) crown and anterior segments, dorsal view; (D) first and second thoracic chaetigers, ventral view; (E) uncini and companion chaetae second thoracic chaetiger; (F) parapodia, mid-abdominal segment; (G) uncini, mid-abdominal segment.
Figure 8 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 8. Amphiglena maiteae sp. nov. SEM preparation, paratypes, AM W30399, AM W30400. (A) Whole specimen, ventral view; (B) anterior segments and base of crown, ventral view; (C) same, dorsal view; (D) second thoracic chaetigers, ventral view; (E) notochaetae, second thoracic chaetiger; (F) uncini and companion chaetae, second thoracic segment; (G) mid-abdominal segment, dorsal view; (H) mid abdominal uncini.
Figure 5 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 5. Amphiglena bondi sp. nov. SEM preparation, paratypes, AM W30480. (A) Whole specimen, ventral view; (B) anterior segments and base of crown, ventral view; (C) anterior segments, dorsal view; (D) first and second thoracic chaetigers, ventral view; (E) uncini and companion chaetae second thoracic chaetiger; (F) parapodia, first abdominal segment; (G) uncini, first abdominal segment.
Figure 4 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 4. Line drawings of uncini. (A, B) A. gracilis sp. nov.: (A) thoracic uncini, seventh chaetiger; (B) midabdominal chaetiger. (C, D) A. bondi sp. nov.: (C) thoracic uncini, seventh chaetiger; (D) mid-abdominal chaetiger. (E, F) A. lenae sp. nov.: (E) thoracic uncini, seventh chaetiger; (F) mid-abdominal chaetiger. (G, H) A. magna sp. nov.: (G) thoracic uncini, seventh chaetiger; (H) mid-abdominal chaetiger. (I, J) A. maiteae sp. nov.: (I) seventh chaetiger; (J) mid-abdominal chaetiger. (K–N) A. nishii sp. nov.: (K, L) seventh chaetiger; (M, N) midabdominal chaetiger. Scale bar: 10 Mm.
Figure 1 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 1. (A) One of the most parsimonious cladograms (L 95, CI 0.62, RI 0.73) from the matrix in Appendix 3. Black circles indicate synapomorphies and white circles homoplasies showing unambiguous changes only. (B) Strict consensus of five most parsimonious trees.
Figure 3 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 3. Amphiglena gracilis sp. nov. Micrographs. (A) Whole specimen ventral view; (B) detail of anterior segments, ventral view; (C) pygidium and posterior segment, ventral view; (D) last thoracic and abdominal segments, ventral view.
Figure 11 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 11. Amphiglena terebro. SEM preparation, AM W30482. (A) Anterior segments and crown, ventral view; (B) detail of anterior segments and base of crown; (C) anterior and posterior peristomial rings; (D) anterior segments and base of crown, dorsal view.
Figure 10 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 10. Amphiglena jimenezi. SEM preparation, paratypes, AM W30487. (A) Anterior segments and base of crown, ventral view; (B) second and third thoracic chaetigers, ventral view; (C) uncini and companion chaetae, seventh thoracic segment; (D) mid-abdominal segment, lateral view.
Figure 2 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 2. Amphiglena gracilis sp. nov. SEM preparation, paratypes, AM W30402–AM W30404, AM W30483, AM W30484. (A) Whole specimen, lateral view; (B) anterior end, ventral view; (C) anterior end, dorsal view; (D) detail of base of crown and peristomium, ventral view; (E) base of crown and dorsal radiolar appendages; (F) notochaetae of fourth thoracic chaetiger; (G) mid-abdominal neurochaetae; (H) uncini, second thoracic chaetiger; (I) uncini and companion chaetae seventh thoracic chaetiger; (J) mid-abdominal uncini.
Figure 7 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 7. Amphiglena magna sp. nov. SEM preparation, paratype, AM W30486. (A) Whole specimens, dorsolateral view; (B) anterior segments and base of crown, ventral view; (C) same, dorsal view; (D) notochaetae, first thoracic chaetiger, ventral view; (E) uncini and companion chaetae second thoracic chaetiger; (F) six and seventh thoracic chaetigers, ventral view; (G) neurochaetae, anterior abdominal segment; (H) uncini, anterior abdominal chaetiger.
Figure 6 in Phylogenetic relationships within Amphiglena Claparède, 1864 (Polychaeta: Sabellidae), description of five new species from Australia, a new species from Japan, and comments on previously described species
Figure 6. Amphiglena lenae sp. nov. SEM preparation, paratype, AM W30479. (A) Whole specimen, ventral view; (B) anterior segments and base of crown, ventral view; (C) base of crown and peristomium, lateral view; (D) first and second thoracic chaetigers, ventral view; (E) uncini and companion chaetae, seventh thoracic chaetiger; (F) neurochaetae and uncini, ventral view, mid-abdominal segment; (G) uncini, same segment.
Figs 16–19 in The second species of Acartophthalmitesfrom Baltic amber (Eocene), with notes on the relationships of the genus (Diptera: Acalyptrata)
Figs 16–19. Acartophthalmites clusioides sp. nov., male holotype. 16 – apex of abdomen laterally, right side; 17 – the same, left side; 18 – head, dorsally; 19 – anteroventral part of head with antenna, right, laterally. Reconstructed parts in dashed lines. All scales = 0.2 mm. For abbreviations see text (p. 411).
Figs 9–15 in The second species of Acartophthalmitesfrom Baltic amber (Eocene), with notes on the relationships of the genus (Diptera: Acalyptrata)
Figs 9–15. Acartophthalmites clusioides sp. nov., male holotype. 9 – head and fore femur, left, sublaterally; 10 – thorax, left, laterally; 11 – left mid trochanter, femur, tibia and basitarsus, posteriorly; 12 – left fore tibia, posteriorly; 13 – left hind tibia, anteriorly; 14 – distal part of right mid tibia, posteriorly; 15 – left wing. Scales = 0.3 mm (Figs 9, 10), 0.5 mm (Figs 11–13, 15) and 0.2 mm (Fig. 14). For abbreviations see text (p. 411).
Figs 3–8 in The second species of Acartophthalmitesfrom Baltic amber (Eocene), with notes on the relationships of the genus (Diptera: Acalyptrata)
Figs 3–8. Acartophthalmites clusioides sp. nov., male holotype. 3 – Baltic amber sample embedded in polyester resin in situ (length of preparatum 13.8 mm); 4 – head and thorax dorsally; 5 – head and anterior part of thorax, left laterally; 6 – ditto, right, laterally; 7 – postabdomen, right, laterally (body length of holotype 3.85 mm); 8 – left wing (length 3.53 mm). Photo by J. Roháček.
Figs 1–2 in The second species of Acartophthalmitesfrom Baltic amber (Eocene), with notes on the relationships of the genus (Diptera: Acalyptrata)
Figs 1–2. Acartophthalmites clusioides sp. nov., male holotype. 1 – right side. 2 – left side. Length of holotype 3.85 mm. Photo by J. Roháček.
Fig. 4. Relationships inferred from a neighbor-joining analysis using 1179 in Revalidation and redescription of three distinct species synonymized as Plagiometriona sahlbergi (Coleoptera: Chrysomelidae: Cassidinae)
Fig. 4. Relationships inferred from a neighbor-joining analysis using 1179 base pairs of the mitochondrial Cytochrome Oxidase I gene for ten co-occurring Brazilian Cassidinae. Multiple numbers after the species name indicate clades consisting of more than one specimen.
Fig. 53 in Freshwater Stingrays Of The Green River Formation Of Wyoming (Early Eocene), With The Description Of A New Genus And Species And An Analysis Of Its Phylogenetic Relationships (Chondrichthyes: Myliobatiformes)
Fig. 53. Strict consensus tree (length = 57 steps, CI = 0.63, RI = 0.69) of 12 equally most parsimonious trees (length = 53 steps, CI = 0.65, RI = 0.72) obtained with phylogenetic analysis performed with matrix in table 7 (with pelagic stingrays experimentally coded as a single terminal, Myliobatidae). See appendix 2 for further details.
Fig. 51 in Freshwater Stingrays Of The Green River Formation Of Wyoming (Early Eocene), With The Description Of A New Genus And Species And An Analysis Of Its Phylogenetic Relationships (Chondrichthyes: Myliobatiformes)
Fig. 51. Tree resulting from our phylogenetic analysis of myliobatiforms, showing placement of two early Eocene stingray taxa from the Monte Bolca Formation of northeastern Italy (fossils presented in fig. 49). These taxa allow for the timing of divergence events between the node that gives rise to †Heliobatis and the node that contains gymnurids and myliobatids; the groups derived directly from the main stem of the phylogeny between these nodes must have originated at least by the early Eocene (roughly 50 mya). See figure 48 for geographical distribution of terminal taxa.
Fig. 52 in Freshwater Stingrays Of The Green River Formation Of Wyoming (Early Eocene), With The Description Of A New Genus And Species And An Analysis Of Its Phylogenetic Relationships (Chondrichthyes: Myliobatiformes)
Fig. 52. Maps showing the distribution of the continents and the extent of their coastlines (in darker line) from Late Cretaceous (Maastrichtian) to middle Eocene, spanning some 25 million years (modified from Smith et al., 1994). Arrowheads indicate the extent of marine incursions (epicontinental seaways) into South America from the north (the protoCaribbean/eastern Pacific region) during these intervals. Mya = million years ago.
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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)
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.