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FIGURE 3 in Morphological disparity despite genetic similarity; new species of Lobosorchis Miller & Cribb, 2005 (Digenea: Cryptogonimidae) from the Great Barrier Reef and the Maldives
FIGURE 3. Phylogram of relationships between species of Lobosorchis Miller & Cribb, 2005 and the other cryptogonimid taxa included based on Bayesian inference analysis of the combined ITS (includes partial ITS1 and complete 5.8S and ITS2) and LSU rDNA dataset. Posterior probabilities are shown above the nodes and bootstrap support values shown below. Phylogram is midpoint rooted.
FIGURE 4 in Morphological disparity despite genetic similarity; new species of Lobosorchis Miller & Cribb, 2005 (Digenea: Cryptogonimidae) from the Great Barrier Reef and the Maldives
FIGURE 4. Phylogram of relationships between species of Lobosorchis Miller & Cribb, 2005 (including the two putative species A and B from metacercariae obtained from the flesh of species of Blenniidae, Pomacentridae and Tetraodontidae off Lizard Island, Great Barrier Reef) and the other cryptogonimid taxa included based on minimum evolution analysis of the ITS2 rDNA dataset. Bootstrap values are indicated at the nodes. Phylogram is midpoint rooted.
FIGURE 2 in Morphological disparity despite genetic similarity; new species of Lobosorchis Miller & Cribb, 2005 (Digenea: Cryptogonimidae) from the Great Barrier Reef and the Maldives
FIGURE 2. Lobosorchis tibaldiae Miller & Cribb, 2005 metacercaria from the flesh of Neoglyphidodon melas off Heron Island, Great Barrier Reef, Australia. Scale Bar = 200 µm.
FIGURE 1. Lobosorchis polygongylus n in Morphological disparity despite genetic similarity; new species of Lobosorchis Miller & Cribb, 2005 (Digenea: Cryptogonimidae) from the Great Barrier Reef and the Maldives
FIGURE 1. Lobosorchis polygongylus n. sp. from the intestine of Lutjanus gibbus off Rasdhoo Atoll, Maldives. Ventral view of holotype. Scale bar = 200 µm.
FIGURE 5 in Morphological disparity despite genetic similarity; new species of Lobosorchis Miller & Cribb, 2005 (Digenea: Cryptogonimidae) from the Great Barrier Reef and the Maldives
FIGURE 5. Host distribution of species of Lobosorchis Miller & Cribb, 2005 mapped onto the phylogeny of Indo-West Pacific Lutjanidae produced by Miller and Cribb (2007a; b).
FIGURE 5 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURE 5. Dorsal and ventral views of (top to bottom) Barrier skink, Sinbad skink, Barrier skink, Sinbad skink. Photographs: Trent Bell
FIGURE 1 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURE 1. Topographical map for the Darran Mountains and Llawrenny Peaks, showing locations of lizards discovered.
FIGURE 6 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURE 6. Barrier skink, live specimen displaying full body detail in natural surroundings, Barrier Knob, February 2007. Photograph: Trent Bell
FIGURE 7–12 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURE 7–12. Head and chin drawings of O. judgei (Figs. 7, 9, 11) and O. pikitanga (Figs. 8, 10, 12).
FIGURE 13 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURE 13. Diagram of a Neighbour-Joining tree with 1000 bootstraps for O. judgei, its closest relatives, and some outgroups (D. Chapple, pers. comm. 2008).
FIGURES 2, 3 in The Barrier skink Oligosoma judgei n. sp. (Reptilia: Scincidae) from the Darran and Takitimu Mountains, South Island, New Zealand
FIGURES 2, 3. Barrier Knob, Darran Mountains. Nine Barrier skinks (Oligosoma judgei) were found on rocky ledges of the peak at 1600 + 50 m a.s.l. in 2007–2008. Photographs: Trent Bell
FIGURE 12 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 12. Paracornulum fistulosum sp. nov. (QMG329109 (SBD504571)). A, Multispicular tracts forming plumoreticulation throughout the choanosome (scale bar 300 μm). B, View of spicule arrangement at the ectosome (scale bar 300 μm). C, Acanthostyles echinating the basal skeleton coating biogenic substratum with evidence of bioerosion (scale bar 500 μm). D, Holotype (scale bar 3 cm). E, Tylote (Type I) with smooth tips (scale bar 100 μm). F, Acanthostyle (scale bar 25 μm). G, Tylote (Type II), heavily spined at both ends (scale bar 50 μm). H, Tylote (Type II) (scale bar 100 μm). I, Tylote (Type II) head, showing detailed spination (scale bar 5 μm).
FIGURE 5 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 5. Dercitus xanthus sp. nov. (QMG329976 (SBD513022)). A, Choanosomal structure displaying a high density of foreign material (scale bar 300 μm). B, Surface of foreign material within the choanosome covered in Sanidasters (scale bar 300 μm). C, External morphology (scale bar 1 mm). D, Holotype (scale bar 2.5 cm). E, Sanidaster (scale bar 10 μm). F, Sanidaster (scale bar 10 μm). G, QMG329977 (SBD513042). Triod calthrops (scale bar 50 μm). H, QMG329977 (SBD513042). Triod calthrops (scale bar50 μm).
FIGURE 8 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 8. Model distribution map displaying predicted and actual distribution and biomass of Xenospongia patelliformis Gray, 1858 from the Great Barrier Reef seabed, displaying: OTU code for this species (TSQMSB.BRS203863), P-AUC: Area Under the Curve performance diagnostic for the Presence/Absence model; Dev. Ratio: Deviance Ratio (P-AUC) performance diagnostic for the Biomass model; Measuresled: a device factor accounting for the difference in sampling rates between devices; Measuretrawllog(AreaHa) and Measuresledlog(AreaHa): offsets accounting for the swept area sampled by the trawl and sled; and influential predictor variables including: CRS_O2_SD: oxygen (ml/l) standard deviation, GA_SAND: sand grainsize fraction (%), GBR_BATHY: bathymetry.
FIGURE 11 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 11. Spheciospongia vagabunda (Ridley, 1884) (QMG329980 (SBD527235)). A, Section through the choanosome (scale bar 250 μm). B, View of spicule arrangement at the ectosome (scale bar 250 μm). C, Specimen (scale bar 8 cm). D, Spiraster (Type II) (scale bar 5 μm). E, Spiraster (Type II) (scale bar 20 μm). F, Spiraster (Type I) (5 μm). G, Spiraster (Type I) (scale bar 8 μm). H, Style (Type II) (scale bar 50 μm). I, Style (Type I) (scale bar 120 μm).
FIGURE 7 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 7. Coscinoderma nardorus (Lendenfeld, 1886) (QMG329979 (SBD500371)). A, Top view of the ectosomal skeleton (scale bar 2 mm). B, Cross section of the skeleton, showing cored primary tracts protruding through the ectosome (scale bar 1 mm). C, Fibre network within the choanosome (scale bar 500 μm). D, QMG330307 (SBD524660). Specimen (scale bar 9 cm).
FIGURE 6 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 6. Model distribution map displaying predicted and actual distribution and biomass of Coscinoderma nardorus (Lendenfeld 1886) from the Great Barrier Reef seabed, displaying: OTU code for this species (SCQMSB.BRS192537), P-AUC: Area Under the Curve performance diagnostic for the Presence/Absence model; Dev. Ratio: Deviance Ratio (P- AUC) performance diagnostic for the Biomass model; Measuresled: a device factor accounting for the difference in sampling rates between devices; Measuretrawllog(AreaHa) and Measuresledlog(AreaHa): offsets accounting for the swept area sampled by the trawl and sled; and influential predictor variables including: CRS_S_SD: influential predictor variables of standard deviation of salinity (psu), Along: along shelf gradient, GA_MUD/ GA_MUD^2: mud grainsize fraction (%) and its quadratic term.
FIGURE 9. Xenospongia patelliformis Gray, 1858 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 9. Xenospongia patelliformis Gray, 1858 (QMG331025 (SBD513104)) A, Specimen (scale bar 5 mm) B, Margin of discoid sponge, showing long echinating styles protruding from the tangential ectosomal layer as well as from brushes perpendicular to the surface (scale bar 3 mm). C, Ectosome, displaying the high concentration of asters and arrangement surface brushes (scale bar 500 μm) D, Ectosome in cross section, with long style protruding from ectosomal bundles. Dense, tangential arrangement of styles and highly arenaceous choanosome are also visible (scale bar 1 mm). E, Large oxyaster (scale bar 15 μm). F, Strongylasters (scale bar 10 μm). G, Style (Type II) (scale bar 50 μm). H, Style (Type I) (scale bar 200 μm). I, Style head (Type II) (scale bar10 μm). J, Style tip (Type II) (scale bar 20 μm). K, Style (Type III)(scale bar 250 μm).
FIGURE 10 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 10. Model distribution map displaying predicted and actual distribution and biomass of Spheciospongia vagabunda (Ridley, 1884) from the Great Barrier Reef seabed, displaying: OTU code for this species (SCQMSB.BRS192794), P-AUC: Area Under the Curve performance diagnostic for the Presence/Absence model; Dev. Ratio: Deviance Ratio (P-AUC) performance diagnostic for the Biomass model; Measuresled: a device factor accounting for the difference in sampling rates between devices; Measuretrawllog(AreaHa) and Measuresledlog(AreaHa): offsets accounting for the swept area sampled by the trawl and sled; and influential predictor variables including: CRS_T_SD: temperature (°C) standard deviation, GA_CRBNT/ GA_ CRBNT ^ 2: carbonate (%) and its quadratic term, TRWL_EFF_I: weighted average annual trawl effort, GBR_SLOPE: slope.
FIGURE 2 in The most common sponges on the Great Barrier Reef seabed, Australia, include species new to science (Phylum Porifera)
FIGURE 2. Colour coding used for defining biomass and standard error for species distribution maps as depicted in figures 4, 6, 8 and 10.
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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.