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139 results for “Varanus”
Figure 12 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 12. Adult Varanus bennetti sp. nov., Losiep Island, Federated States of Micronesia (photo by James Reardon).
Figure 5 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 5. (a) Dorsolateral and ventral aspects of the neotype (USNM 576258) of Varanus tsukamotoi. (b) Lateral profile of the head of the neotype (USNM 576258) of Varanus tsukamotoi.
Figure 8 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 8. (a) Dorsolateral and ventral aspects of the holotype (USNM 507504) of Varanus bennetti sp. nov. (b) Lateral profile of the head of the holotype (USNM 507504) of Varanus bennetti sp. nov.
Figure 11 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 11. Subadult Varanus bennetti sp. nov., Losiep Island, Federated States of Micronesia (photo by James Reardon).
Figure 1 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 1. Map of the Pacific region showing the distribution of Varanus tsukamotoi (white dots), V. bennetti sp. nov. (red dots), V. lirungensis (yellow dot) and V. rainerguentheri (green dot).
Figure 2 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 2. (a) Linear discriminant function analysis of scalational characters for V. bennetti sp. nov., V. lirungensis, V. rainerguentheri and V. tsukamotoi showing non-overlapping multivariate morpho-spaces for all species except V. bennetti sp. nov. and V. rainerguentheri. (b) Box-plot of relative tail length (proportion index 1) for examined individuals of V. bennetti sp. nov., V. lirungensis, V. rainerguentheri and V. tsukamotoi showing the exceptionally long tail of V. bennetti sp. nov.
Figure 3 in Taxonomy of Micronesian monitors (Reptilia: Squamata: Varanus): endemic status of new species argues for caution in pursuing eradication plans
Figure 3. Strict consensus of the nine most-parsimonious trees resulting from the TNT analysis. Jackknife resampling values greater than 50% are shown above, and the numbers of synapomorphies shared by each clade are shown below the nodes in parentheses. Branch lengths represent the number of optimized character-state changes.
Fig 11. Kapsulotaenia chisholmae n in Kapsulotaenia chisholmae n. sp. (Cestoda: Proteocephalidae), from Varanus spenceri (Reptilia: Varanidae) in Australia
Fig 11. Kapsulotaenia chisholmae n. sp. Schematic view of the scoleces, showing the different shape of contraction, with rostellum extended, partially and fully retracted.
Figs 8-10. Kapsulotaenia chisholmae n in Kapsulotaenia chisholmae n. sp. (Cestoda: Proteocephalidae), from Varanus spenceri (Reptilia: Varanidae) in Australia
Figs 8-10. Kapsulotaenia chisholmae n. sp. Figs. 8-10, QM G235019. Scanning electron micrographs. (8) Dorsoventral view. (9) Lateral view. (10) Apical view.
Figs 1-3. Kapsulotaenia chisholmae n in Kapsulotaenia chisholmae n. sp. (Cestoda: Proteocephalidae), from Varanus spenceri (Reptilia: Varanidae) in Australia
Figs 1-3. Kapsulotaenia chisholmae n. sp. (1) Total lateral view of a scolex (holotype – QM G235015). (2) Dorsal view of a mature proglottis (paratype MHNG-PLAT-31201). (3) Dorsal view of a pregravid proglottis (paratype MHNG-PLAT-31201). Abbreviations: ao – apical organ; cc – chromophilic cells; ci – cirrus; cm – circular musculature; cs – cirrus-sac; do – dorsal osmoregulatory canal; du – uterine diverticula; mg – Mehlis' glands; ov – ovary; te – testes; us – uterine stem; va – vas deferens; vc – vaginal canal; vi – vitelline follicles; vo – ventral osmoregulatory canal.
Figs 4-7. Kapsulotaenia chisholmae n in Kapsulotaenia chisholmae n. sp. (Cestoda: Proteocephalidae), from Varanus spenceri (Reptilia: Varanidae) in Australia
Figs 4-7. Kapsulotaenia chisholmae n. sp. (4) Transversal section of a proglottis at level of its anterior part (paratype MHNG-PLAT-31201). (5) Transversal section of a proglottis at level of cirrus-sac (paratype MHNG-PLAT-31201). (6) Transversal section of a proglottis at level of the ovary (paratype QM G235018). (7) Egg cluster. Abbreviations: ci – cirrus; cs – cirrussac; do – dorsal osmoregulatory canal; em – tri-layered embryophore; lm – internal longitudinal musculature; oe – outer envelope; on – oncosphere; ov – ovary; st – subtegumental muscle fibres; su – subtegumental cells; te – testes; tg – tegument; ud – uteroduct; ut – uterus; va – vas deferens; vc – vaginal canal; vd – vitelloduct; vi – vitelline follicles; vo – ventral osmoregulatory canal.
FIG. 3 in First fossil of Varanus Merrem, 1820 (Squamata: Varanidae) from the Miocene Siwaliks of Pakistan
FIG. 3. — Varanus sp. from the Miocene of Pakistan: trunk vertebra (SNSB-BSPG 1956 II 2010) in ventral (A), posterior (B), right lateral (C), dorsal (D), anterior (E), and left lateral (F) views. Abbreviations: ml, mediospinal lamina; pcl, posterior centrosynapophyseal lamina; pl, prespinal lamina; pt, pars tectiformis; s, synapophysis; spl, spinopostzygapophyseal lamina. Scale bar: 5 mm.
FIG. 2 in First fossil of Varanus Merrem, 1820 (Squamata: Varanidae) from the Miocene Siwaliks of Pakistan
FIG. 2. — Map of Pakistan (A) and of northern Punjab (B), showing the area where the villages of Marianwala and Kas are located (small square in B) south of Chinji.
Molecular data from "Between a rock and a dry place: phylogenomics, biogeography, and systematics of ridge-tailed monitors (Squamata: Varanidae: Varanus acanthurus complex)"
<p><strong>Phylogenetic_dataset.csv</strong>: Unfiltered DArTseq data used in phylogenetic analyses. Readable by 'dartR' (Gruber et al. 2018).</p> <p><strong>Population_dataset.csv</strong>: Unfiltered DArTseq data used in population-level analyses. Readable by 'dartR' (Gruber et al. 2018).</p> <p><strong>Reference.csv</strong>: Spreadsheet listing individuals included in molecular analyses. Includes vouchers, species, name of each sample in DArTseq data sets, and GenBank accession numbers (GB) for mitochondrial data. ABTC stands for Australian Biological Tissue Collection; AA and CCM for field numbers of uncatalogued specimens. Other collection acronyms follow Sabaj (2019). We refrain from assigning individuals that were not included in the molecular analyses to any given species.</p>
Fig. 3 in A single species of mangrove monitor (Varanus) occupies Ambon, Seram, Buru and Saparua, Moluccas, Indonesia
Fig. 3. Distribution map of mangrove monitors in the Moluccas and western New Guinea, the blue tailed monitors not included.
Fig. 2 in A single species of mangrove monitor (Varanus) occupies Ambon, Seram, Buru and Saparua, Moluccas, Indonesia
Fig. 2. Principal Components Analysis of scalation characters for several island populations of V. cerambonensis, V. indicus, and V. rainerguentheri. The two Xs represent ZFMK 70650 and ZMA 11146c.
Fig. 1 in A single species of mangrove monitor (Varanus) occupies Ambon, Seram, Buru and Saparua, Moluccas, Indonesia
Fig. 1. Mangrove monitors and their habitats: V. cerambonensis on Ambon (A), Seram (B), and Buru (C, D). Varanus rainerguentheri on Halmahera (E) and Obi (F). Coastal vegetation on Ambon (G) and Nipa swamp (H). Photographs by Valter Weijola.
Figure 4 in Skeletochronology in long tubular bones of the Javan water monitor lizard, Varanus salvator bivittatus in the juvenile stage (Lacertilia: Varanidae)
Figure 4. Cross sections of the diaphysis fibula bone in four individuals with SVLs between 14.4 cm to 25.0 cm. Dotted arrow: endosteal bone; black solid arrow: LAG; red solid arrow: resorption line (RL); yellow solid arrow: additional resting Line (AdL). The scale bar is equal to 200 m.
Figure 1 in Skeletochronology in long tubular bones of the Javan water monitor lizard, Varanus salvator bivittatus in the juvenile stage (Lacertilia: Varanidae)
Figure 1. Measurement of bone cross section. d: the longest part of the marrow cavity; D: the longest part of the bone diameter; MP: the widest point of bone thickness.
Figure 3 in Skeletochronology in long tubular bones of the Javan water monitor lizard, Varanus salvator bivittatus in the juvenile stage (Lacertilia: Varanidae)
Figure 3. Cross section of the seven long tubular bones of a juvenile female Varanus salvator bivittatus with one LAG (SVL: 22.2 cm). MC: marrow cavity; dotted arrow: endosteal bone; red solid arrow: LAG.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.