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438 results for “Bovidae”
FIG. 4 in The Paris Bloubok (Hippotragus leucophaeus (Pallas, 1766) [Bovidae]) and its provenance
FIG. 4. — Gordon illustration of the Bloubok. Courtesy of the Rijksmuseum. https://www.robertjacobgordon.nl/drawings/rp-t-1914-17-159
FIG. 3 in The Paris Bloubok (Hippotragus leucophaeus (Pallas, 1766) [Bovidae]) and its provenance
FIG. 3. — Gordon illustration of a Roan antelope skin sent to The Hague in 1779. Courtesy of the Rijksmuseum. https://www.robertjacobgordon.nl/drawings/rp-t-1914-17-161
FIG. 1 in The Paris Bloubok (Hippotragus leucophaeus (Pallas, 1766) [Bovidae]) and its provenance
FIG. 1. — Photograph of the Paris specimen of Hippotragus leucophaeus (Pallas, 1766). Photo: © MNHN - C. Lemzaouda / P. Lafaite.
FIG. 6 in The Paris Bloubok (Hippotragus leucophaeus (Pallas, 1766) [Bovidae]) and its provenance
FIG. 6. — Illustration of Levaillant's Bloubok. University of Leiden Library. Courtesy of the Library.
Figure 3 in A new late Miocene bovid (Mammalia: Artiodactyla: Bovidae) from ˙orakyerler (Turkey)
Figure 3. Gangraia anatolica gen. and sp. nov., from ˙orakyerler, Turkey. Paratype cranium ˙O 3124 in (a) dorsal, (b) ventral, (c) right lateral, and (d) caudal view. Scale bar: 5 cm.
Figure 2 in A new late Miocene bovid (Mammalia: Artiodactyla: Bovidae) from ˙orakyerler (Turkey)
Figure 2. Gangraia anatolica gen. and sp. nov., from ˙orakyerler, Turkey. Paratype cranium ˙O 3476 (a) and female frontlet ˙O 1427 (b); (1) frontal views; (2) caudal views; (a3) dorsal view; (a4) close up of the base of the left horn core in lateral view showing the single sinus occupying the pedicle and the basal horn core (arrows indicate the pedicle–horn core contact); (a5) close up of the dorsal parietal surface with marked anatomical details; and (b3) lateral view. The arrow in (b1) indicates the frontal sinus occupying the pedicle. Abbreviations: bhcs: basal horn core sinus; phdpr: post horn core depression; pboss: parietal boss; tmpc: temporal crest; tps: temporo-parietal suture; nc: nuchal crest; intpr: interparietal; and sulc: sulcus. (a1)–(a3) and (b1)–(b3) scale bar: 5 cm; (a4) and (a5) not to scale.
Figure 1 in A new late Miocene bovid (Mammalia: Artiodactyla: Bovidae) from ˙orakyerler (Turkey)
Figure 1. Gangraia anatolica gen. and sp. nov. from ˙orakyerler, Turkey. Holotype cranium ˙O 3187 in (a) dorsal, (b) ventral, (c) caudal, (d) right lateral, and (e) frontal views. (f) Detail of the dorsal parietal surface; (g) close up of auditory bulla; (h) antero-medial view of the left horn core; and (i) ventral view of the frontals. (a)–(e) Scale bar: 5 cm; (f)–(i) not to scale. Abbreviations: stylf: stylohyal fossa; aub: auditory bulla; intpr: interparietal; pboss: parietal boss; tmpc: temporal crest; tps: temporo-parietal suture; cors: coronal suture; pstcf: postcornual fossa; orb: orbit; mfrs: median frontal sinus; lfrs: lateral frontal sinus; homts: homonymous torsion; trrdg: transverse ridges; and bhcsw: basal horn core swelling.
Ovis canadensis (Bovidae) - whole organism - unspecified
Image of Ovis canadensis (Bovidae) - whole organism - unspecified
Ovis canadensis (Bovidae) - whole organism - unspecified
Image of Ovis canadensis (Bovidae) - whole organism - unspecified
Oreamnos americanus (Bovidae) - whole organism - unspecified
Image of Oreamnos americanus (Bovidae) - whole organism - unspecified
Oreamnos americanus (Bovidae) - whole organism - unspecified
Image of Oreamnos americanus (Bovidae) - whole organism - unspecified
Fig. 3 in Fossil Ovibos Moschatus (Artiodactyla, Bovidae) From Buryn, With Reference To Muskox Dispersal In The Late Pleistocene Of Ukraine
Fig. 3. Last Glacial maximum distribution of Ovibos moschatus (after Kahlke, 2014, with modifications). Previously known localities with fossil muskox remains within the territory of Ukraine are indicated by circles. The find described herein is indicated by square.
Fig. 2 in Fossil Ovibos Moschatus (Artiodactyla, Bovidae) From Buryn, With Reference To Muskox Dispersal In The Late Pleistocene Of Ukraine
Fig. 2. Skull fragment of muskox from the Buryn district local history museum in dorsal (A), ventra (B), lateral (C), and posterior view (D). Scale bar equals 10 cm in A and B, 5 cm in C and D.
Figure 4 in First occurrence of Duboisia (Bovidae, Artiodactyla, Mammalia) from Thailand
Figure 4. Comparison of skulls between Duboisia aff. santeng (A–B: PPN 01-000109) and D. santeng (C–D: MGB.SA 290709) from Pucung (Java). Panels (a) and (c), left lateral view; (b) and (d), anterior view and cross section of the left horn core. Abbreviations: an., anterior; me., medial.
Figure 3 in First occurrence of Duboisia (Bovidae, Artiodactyla, Mammalia) from Thailand
Figure 3. Calvarium with right and left horn cores of Duboisia aff. santeng (PPN 01-000109). (a) Anterior view; (b) cross section of the left horn core (an., anterior; me., medial.); (c) left lateral view; (d) posterior view; (e) schematic drawing of the posterior surface; (f) dorsal view; (g) schematic drawing of the dorsal surface.
Figure 1 in First occurrence of Duboisia (Bovidae, Artiodactyla, Mammalia) from Thailand
Figure 1. Geological map of the Khorat basin, Nakhon Ratchasima, north-eastern Thailand, and the locality of Tha Chang sandpit no. 8 (modified from Department of Mineral Resources, 1999).
Figure 5 in First occurrence of Duboisia (Bovidae, Artiodactyla, Mammalia) from Thailand
Figure 5. Distribution of Boselaphini and zoogeographical barriers between South Asia and South East Asia. Fossil localities: 1, Siwaliks; 2, Bagan; 3, Tha Chang; 4, Java.
Impact of infectious diseases on wild bovidae populations in Thailand: Insights from population modelling and disease dynamics
<p>The wildlife and livestock interface is vital for wildlife conservation and habitat management. Infectious diseases maintained by domestic species may impact threatened species such as Asian bovids, as they share natural resources and habitats. To predict the population impact of infectious diseases with different traits, we used stochastic mathematical models to simulate the population dynamics over 100 years for 100 times a model gaur (<em>Bos gaurus</em>) population with and without disease. We simulated repeated introductions from a reservoir, such as domestic cattle. We selected six bovine infectious diseases; anthrax, bovine tuberculosis, hemorrhagic septicaemia, lumpy skin disease, foot and mouth disease and brucellosis, all of which have caused outbreaks in wildlife populations. From a starting population of 300, the disease-free population increased by an average of 228% over 100 years. Brucellosis with frequency-dependent transmission showed the highest average population declines (-97%), with population extinction occurring 16% of the time. Foot and mouth disease with frequency-dependent transmission showed the lowest impact, with an average population increase of 200%. Overall, acute infections with very high or low fatality had the lowest impact, whereas chronic infections produced the greatest population decline. These results may help disease management and surveillance strategies support wildlife conservation.</p>
Fig. 4 in Morphological and molecular characterization of Calicophoron raja (N¨asmark, 1937) collected from wild Bovidae in South Africa
Fig. 4. Maximum likelihood (ML) phylogenetic tree based on the internal transcribed spacer 2 (ITS2) nucleotide sequence of ribosomal DNA. Bootstrap values above 50% are displayed. Calicophoron raja sequences are shown in bold font. All 16 flukes obtained from a black wildebeest and a waterbuck showed an identical sequence, and the representative sequence was deposited in the INSD under accession no. LC633276.
Fig. 3 in Morphological and molecular characterization of Calicophoron raja (N¨asmark, 1937) collected from wild Bovidae in South Africa
Fig. 3. Representative horizontal section of anterior (at) and posterior (pt) testes. Scale bar: 1 mm.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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
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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.