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Figure 5 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 5. Shells of Hyalorisia. A. Hyalorisia lehibe n. sp., holotype, MNHN-IM-2007-39212, off Mahajanga, Madagascar (L = 15 mm). B. Hyalorisia nanhaiensis n. sp., holotype, MNHN-IM-2013-59534, S of Dongsha (=Pratas) Islands, South China Sea (L = 8.5 mm). C. Hyalorisia kely n. sp., holotype, MNHN-IM-2007-39091, off Mahajanga, Madagascar (L = 6.5). D. Hyalorisia melanesica n. sp., holotype, MNHN-IM-2007-33873, Bellona Reefs, New Caledonia (L = 6.6 mm). Scale bars = 2 mm.
Figure 9 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 9. Bivalve hosts (Propeamussium spp.) with foot mark (black arrows) and notch (white arrows) of Hyalorisia. A. Propeamussium sibogai, MNHN-IM-2007- 33954 (L = 46.7 mm), host of H. nupta n. sp. (MNHN-IM-2007-34010). B. Propeamussium caducum, MNHN-IM-2007-39095 (L = 17.8 mm), host of H. kely n. sp. (MNHN-IM-2007-39091). C, D. Propeamussium dalli, MNHN-IM-2013-60196 (L = 83 mm) with H. galea (MNHN-IM-2013-60195) still attached. Photo credits: MNHN; taken by Yves Terryn (A, B) and Laurent Charles (C). Scale bars = 5 mm.
Figure 7 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 7. Radulae of Hyalorisia (A–I) and detail of the rachidian tooth (J–R). A, J. Hyalorisia galea MNHN-IM-2013-60195. B, K. Hyalorisia neocaledonica n. sp., MNHN-IM-2013-65647. C, L. Hyalorisia tosaensis, MNHN-IM-2013-58352. D, M. Hyalorisia nupta n. sp., MNHN-IM-2013-68952. E, N. Hyalorisia nanhaiensis n. sp., MNHN-IM-2013-59697. F, O. Hyalorisia kely n. sp., MNHN-IM-2007-38809. G, P. Hyalorisia melanesica n. sp., MNHN-IM-2007-34205. H, Q. Hyalorisia madagascarensis n. sp., MNHN-IM-2007-39090. I, R. Hyalorisia solomonensis n. sp., MNHN-IM-2007-34215. Scale bars = 100 µm.
Figure 2 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 2. Phylogenetic relationships of the genus Hyalorisia (Bayesian tree based on the combined dataset). Boxes indicate the three lineages, A, B and C, of Hyalorisia. Numbers at nodes are PP and UFb branch support values, respectively; only values higher than 80% are reported, and black dots indicate maximally supported branches. Scale bar indicates substitutions per site.
Figure 1 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 1. Phylogenetic relationships of the genus Hyalorisia (Bayesian tree based on the COI dataset). Numbers at nodes indicate branch support values (PP and UFb values, respectively); only values ≥95% are shown. Boxes indicate the final species hypotheses (MOTUs) for the genus. The histogram displays the distribution of the pairwise genetic distances (K2P) for the MOTUs, as based on the COI alignment; the black bars on the left are intraspecific distances and the yellow bars on the right are interspecific distances. The last two letters in the sample codes indicate the relevant general area of origin: ANT, Antarctica; JP, Japan; AK, Alaska; WA, Washington State; CA, California; PH, Philippines; NC, New Caledonia; SE, Sweden; IT, Italy; FR, Corsica; CNSea, South China Sea; MZChannel, Mozambique Channel; MG, Madagascar; PG, Papua New Guinea; SB, Solomon Islands; GP, Guadeloupe. Scale bar indicates substitutions per site.
Figure 3 in High cryptic diversity in the kleptoparasitic genus Hyalorisia Dall, 1889 (Littorinimorpha: Capulidae) with the description of nine new species from the Indo-West Pacific
Figure 3. Protoconchs of Hyalorisia. A. Hyalorisia galea, MNHN-IM-2013-61536. B. Hyalorisia neocaledonica n. sp., MNHN-IM-2013-65907. C. Hyalorisia tosaensis, MNHN-IM-2007-34794. D. Hyalorisia nupta n. sp., MNHN-IM-2007-34005. E. Hyalorisia lehibe n. sp., MNHN-IM-2007-39212. F. Hyalorisia nanhaiensis n. sp., MNHN-IM-2013-34796. G. Hyalorisia kely n. sp., MNHN-IM-2007-38809. H. Hyalorisia melanesica n. sp., MNHN-IM-2013-58359. I. Hyalorisia profunda n. sp., MNHN-IM-2007-33828. J. Hyalorisia madagascarensis n. sp., MNHN-IM-39292. K. Hyalorisia solomonensis n. sp., MNHN-IM-2007-34215. Scale bars = 100 µm.
FIGURE 7 in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 7. Advertisement calls of Euphlyctis cyanophlyctis, Sphaerotheca pashchima, Microhyla nilphamariensis, Polypedates maculatus recorded in PTR: From top to bottom A & B represent oscillograms, C—spectrogram, D—power spectrum, (FFT size = 1024 pts, Hanning window, 43.1 Hz resolution).
FIGURE 5 in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 5. Advertisement calls of Duttaphrynus melanostictus, Duttaphrynus scaber and Duttaphrynus stomaticus recorded in PTR: From top to bottom A & B represent oscillograms, C—spectrogram, D—power spectrum, (FFT size = 1024 pts, Hanning window, 43.1 Hz resolution). In B of D. melanostictus, call is underlined for which power spectrum in D is produced. The call trace of each species is provided in supporting supplementary information.
FIGURE 8B in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 8B. Maximum Likelihood tree based on the 16S mitochondrial DNA dataset (nodes having>50% bootstrap values are shown) of genera B. Sphaerotheca (Red colour indicates sequences generated in this study).
FIGURE 2 in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 2. Map showing surveyed location for amphibians in PTR which includes 86 visual encounter survey (VES) localities marked in yellow dots and opportunistic sightings marked as black dots. Legend highlighting core and buffer boundary of Panna Tiger Reserve. In some cases, the dots appear overlapped due to the scale and the proximity of the localities. Inset images shows study site in Madhya Pradesh in map of India.
FIGURE 4 in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 4. Photos of anuran species in life recorded during the study: A) Duttaphrynus melanostictus; B) Duttaphrynus scaber; C) Duttaphrynus stomaticus; D) Fejervarya orissaensis; E) Minervarya caperata; F) Minervarya pierrei; G) Euphlyctis cyanophlyctis; H) Hoplobatrachus crassus; I) Hoplobatrachus tigerinus; J) Sphaerotheca pashchima; K) Microhyla nilphamariensis; L) Uperodon globulosus; M) Uperodon systoma; N) Uperodon variegatus; O) Polypedates maculatus. Red star indicates new state records for Madhya Pradesh.
FIGURE 8A in Identification of anuran species diversity of the Panna Tiger Reserve, Central India, using an integrated approach
FIGURE 8A. Maximum Likelihood tree based on the 16S mitochondrial DNA dataset (nodes having>50% bootstrap values are shown) of genera A. Fejervarya and Minervarya.
FIGURE 12 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 12. Illustration of Neacomys serranensis sp. nov. by wildlife artist and zoologist Velizar Simeonovski.
FIGURE 10 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 10. Comparison of the lateral profiles of the skulls of Trans-Andean species of Neacomys present in Colombia: A) Neacomys sp. nov. (UIS-MHN-M 1068, holotype). B) Neacomys tenuipes (UIS-MHN-M 1723). Note a more convex profile of the braincase, a thicker hamular process of the squamosal, a broader condylar process, a larger and laterally projected mental foramen, and the anterior margin of nasals without a hump in Neacomys sp. nov. con: condylar process; hp: hamular process of the squamosal; mf: mental foramen; nas: nasals.
FIGURE 8 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 8. Ventral perspectives of adult specimens illustrating the striking difference in ventral fur of the two Trans-Andean species of Neacomys present in Colombia: A) Holotype of Neacomys sp. nov (UIS-MHN-M 1068). B) Section of the holotype of Neacomys sp. nov. showing its characteristic gray-based ochraceous-buff ventral fur. C) Neacomys tenuipes (UIS-MHN-M 1723); note the contrasting entirely white ventral fur of this species.
FIGURE 7 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 7. Frontal perspectives of adult specimens belonging to the two Trans-Andean species of Neacomys present in Colombia: A) Holotype of Neacomys sp. nov (UIS-MHN-M 1068); note the distinctive broad ochraceous-orange patches in the sides of the muzzle of this species. B) Neacomys tenuipes (UIS-MHN-M 1723).
FIGURE 6 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 6. Dorsal perspectives of adult specimens belonging to the two Trans-Andean species of Neacomys present in Colombia: A) Holotype of Neacomys sp. nov (UIS-MHN-M 1068). B) Neacomys tenuipes (UIS-MHN-M 1723); note that a portion of the tail is missing in this specimen.
FIGURE 5. A in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 5. A) Montane forest habitat along the left Bank of the La San Guillerma stream, adjacent to the type locality of Neacomys sp. nov. (municipality of El Carmen de Chucurí) (Photograph by Juliette Gualdrón) B) View of the forest remnant where the second specimen of Neacomys sp nov. was collected (municipality of Hato) (Photograph by Juliette Gualdrón). C) Topography of the western slope of the Serranía de los Yariguíes from the campsite "Finca Buenos Aires"; near the type locality of Neacomys sp. nov. D) Educational activity with members of the community in the municipality of El Carmen del Chucurí, Vereda la Bodega, Sector Manchurrias, illustrating the importance of government funded projects (like Santander BIO expeditions), not only to inventory the biodiversity of remote areas, but also to teach local people to preserve it.
FIGURE 4 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 4. Scatterplots of the Principal Components Analyses: PC1 and PC2 are represented in the graphics. A. PCA of the external and craniodental variables of all the small-bodied species of Neacomys; B. PCA of the craniodental variables of N. tenuipes and Neacomys sp. nov. Miniatures in the right side correspond to the Bayesian Cytb phylogeny recovered here (FIGURE 3): species in the scatterplots and the phylogenies are same colored.
FIGURE 3 in Calling for a reassessment of rodent diversity in Colombia: description of a new species of Neacomys (Cricetidae: Oryzomyini) from the Magdalena Valley, with a new phylogenetic hypothesis for the genus and comments on its diversification
FIGURE 3. Bayesian Inference topology based on Cytb sequence data used to assess the position of Neacomys sp. nov. in relation to other species in the genus (BI and ML analyses resulted in congruent topologies). Support values are indicated for each node (Bayesian posterior probabilities to the left, and percentages of 1,000 bootstrap replicates to the right). Each terminal is identified by country of origin, the next largest political unit, and GenBank accession number (in red). For specimens of N. tenuipes and Neacomys sp. nov. sequenced here, collection numbers are provided, as well as a number referring to localities mapped in FIGURE 2 and listed in Appendix I. Shaded colored boxes enclose the species groups proposed by Hurtado & Pacheco (2017) and Semedo et al. (2020). Abbreviations: BO (Bolivia), BR (Brazil), CO (Colombia), EC (Ecuador), FG (French Guyana), GU (Guyana), PE (Peru), and SU (Suriname).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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.