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60 results for “Myobatrachidae”
FIGURE 3 in A new species of Uperoleia (Anura: Myobatrachidae) from the northwest Kimberley, Western Australia
FIGURE 3. Holotype (WAM R168043) of Uperoleia micra sp.nov.: A) dorsal, B) lateral and C) ventral views of head; D) plantar surface of left foot; E) plantar surface of left foot of U. minima (WAM R167878).
FIGURE 2 in A new species of Uperoleia (Anura: Myobatrachidae) from the northwest Kimberley, Western Australia
FIGURE 2. Uperoleia micra sp. nov.: A) WAM R164988 from Katers Island, Western Australia; B) WAM R168042; C) WAM R168044 from near Bachsten Creek, Western Australia; D) collection location of calling males (WAM R168039– 40) near Bachsten Creek; males were calling from the low crevice within which had flowing water, and U. borealis and U. crassa were calling from the flooded grassy areas in the foreground (height of boulders ~ 2.5 m).
FIGURE 1 in A new species of Uperoleia (Anura: Myobatrachidae) from the northwest Kimberley, Western Australia
FIGURE 1. Distribution of Uperoleia micra sp. nov. and U. minima in the northwest Kimberley, Western Australia.
FIGURE 9 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 9. Photos in life (dorsolateral and dorsal views) and after preservation (ventral view) of U. saxatilis sp. nov. holotype (WAM R162877) from Turee Creek, Western Australia. Photos by P. Doughty.
FIGURE 5 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 5. Plot showing results of Principle Components Analysis (top) and Discriminant Function Analysis (bottom) on body proportion variables only, see text for details. Uperoleia micromeles is the most distinct and U. russelli and U. saxatilis sp. nov. are indistinguishable based on these characters, but each is distinct based on genetic, call and other morphological characters.
FIGURE 6 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 6. Oscillographs and spectrograms of (a) U. glandulosa, U. russelli (b) long call and (c) short call, U. talpa (d) long call and (e) short call, and U. saxatilis sp. nov. (f) long call and (g) short call.
FIGURE 1 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 1. Geological regions of the western arid zone of Australia. Solid lines denote geological boundaries and dotted lines represent rivers. Modified from Beard & Webb (1974), Beard (1975, 1979), and Interim Biogeographic Regions of Australia version 6.1 (Commonwealth of Australia 2005).
FIGURE 4 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 4. Molecular phylogeny of the genus Uperoleia based on a combined analysis of five genes including the mtDNA genes 16S and ND2 and the nuclear loci RAG-1, POMC, and BNDF (total 4,152 bp). The phylogeny shown is based on a partitioned Bayesian analysis, see text for details. Values above the branches are Bayesian posterior probabilities and values below are the parsimony bootstrap values.
FIGURE 3 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 3. Molecular phylogeny of the genus Uperoleia based on the mtDNA genes 16S and ND2 (total 2,047 bp), including all tissues available for sequencing from the western arid zone. The phylogeny shown is based on a partitioned Bayesian analysis where each gene represents one partition. Values above the branches are Bayesian posterior probabilities and values below are the parsimony bootstrap values.
FIGURE 2 in Multi-locus phylogeny and taxonomic revision of Uperoleia toadlets (Anura: Myobatrachidae) from the western arid zone of Australia, with a description of a new species
FIGURE 2. Extent of webbing relative to tubercle position on the fourth toe. a) basal webbing, b) webbing extends to the first proximal tubercle, c) webbing extends to halfway between the first and second proximal tubercles, d) webbing extends to the second proximal tubercle.
FIGURE 2 in A new frog species (Myobatrachidae: Uperoleia) from the Northern Deserts region of Australia, with a redescription of U. trachyderma
FIGURE 2. Map of the Australian Monsoonal Tropics showing the distribution of (a) nDNA groups, (b) mtDNA clades, (c) acoustic variation, and (d) total known distribution of U. stridera sp. nov (green) and U. trachyderma (yellow) based on our data and previous taxonomic descriptions. Half coloured shapes in (b) indicate locations with multiple mtDNA clades present. Arrowheads in (d) indicate type localities. In (a), major bioregions are in bold, and biogeographical barriers are in italics. In (b), dashed lines indicate major roads and dots indicate locations. Modified from Catullo et al. 2013.
FIGURE 1 in A new frog species (Myobatrachidae: Uperoleia) from the Northern Deserts region of Australia, with a redescription of U. trachyderma
FIGURE 1. Mitochondrial (a) and nuclear (b) phylogenies of U. stridera sp. nov. and U. trachyderma (modified from Catullo et al. 2013). Patterned bars indicate final species allocation based on genetics, morphology, and acoustics. Individuals with differing mitochondrial versus nuclear haplotypes are indicated by arrows. Oscillogram and spectrograms for the holotype of U. stridera sp. nov. (Up0261, WAM R164738, from near Fitzroy Crossing, WA) and U. trachyderma (Up1091, NTM R36190, from Bullwaddy Conservation Reserve, NT) are pictured in (c). Oscillograms display amplitude (y-axis) against time (x-axis), and spectrograms display frequency (y-axis) against time (x-axis). Time for each graph is one second.
FIGURE 3 in A new frog species (Myobatrachidae: Uperoleia) from the Northern Deserts region of Australia, with a redescription of U. trachyderma
FIGURE 3. (a) Dorsal, dorsolateral, and ventral photos of the holotype of Uperoleia stridera sp. nov. (WAM R164738); (b) Photos of U. trachyderma in life (NTM R36190, R36194, & R36202); and (c) Photos of U. stridera sp. nov. (NTM R36209, R36212, & R36213). Photos by M. Whitehead & R. Catullo.
FIGURE 6. A in A new species of Australian frog (Myobatrachidae: Uperoleia) from the New South Wales mid-north coast sandplains
FIGURE 6. A representative oscillogram (above) and spectrogram (below) of the advertisement call of Uperoleia mahonyi sp. nov., Oyster Cove, NSW. The x-axis is time in seconds.
FIGURE 14 in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 14. Reproduction in Assa wollumbin sp. nov. A) Adult male calling with extended vocal sac (R Knowles), B) egg mass comprising 10 eggs with one obscured (L. Pattinson), C) male in attendance at egg mass AMS R185956 (MJM), D) embryos prior to hatching (MJM), E) hatched embryos wriggling up the flanks of the male and into the pouch, AMS R185957 (MJM), and F) male with newly metamorphosed frog with rear half of body and legs outside of the pouch, AMS R185958 (MJM).
FIGURE 12 in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 12. Assa wollumbin sp. nov. adult male holotype (AMS R185959) in life from Wollumbin National Park. Photos SVM. A) lateral view, B) ventral view.
FIGURE 9 in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 9. Photos of holotype of Assa darlingtoni, MCZ 18390, in preservative. A) dorsal view, B) ventral view, C) left hindlimb, D) left foot. Images by Jose Rosado.
FIGURE 13 in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 13. Photos in life of Assa wollumbin sp. nov. from Wollumbin, NSW. All adult males, A) AMS R185956, B) AMS R185957, C) AMS R185958, D AMS R185960, E) not vouchered, F) not vouchered, G) AMS R185956, H) AMS R185957, I) AMS R185960. Images by SVM.
FIGURE 3 in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 3. SNP variation in Assa. A) PCoA ordination of SNP diversity, B) STRUCTURE barplots showing ancestry. In the upper plot all samples were analysed, in the lower plot just the A. darlingtoni samples were analysed. Numbers refer to localities detailed in Table 1 and Fig. 1.
FIGURE 6. Assa advertisement calls from A–B in A new hip-pocket frog from mid-eastern Australia (Anura: Myobatrachidae: Assa)
FIGURE 6. Assa advertisement calls from A–B) Assa wollumbin sp. nov. calls with nine and seven notes (Wollumbin, NSW) (Temperature 19.5 to 22.0 oC) (R.185956–60). (C–D) A. darlingtoni calls with 15 (Border Ranges National Park, NSW (Temperature 16 to 17.0 oC) and 13 (Conondale Ranges National Park, Qld. Temperature 18.2 oC). Waveforms (upper panel) display amplitude (y-axis) against time (x-axis, seconds); spectrograms (lower panel) display call frequency (y-axis) and intensity (degree of shading) against time (x-axis, seconds).
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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.