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Figure 3 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure 3 Distance tree (cluster analysis) made with biometric measurements of 39 Mazama americana specimens of various origins compared to the neotype and other Mazama species (M. nemorivaga, M. gouazoubira, M. nana and M. bororo).
Figure 2 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure 2 Right lateral (A), left lateral (B), ventral (C) and dorsal (D) views of the skull of the M. americana neotype. Scale illustrates measurement in centimeters.
Figure 1 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure 1 Lateral view of the adult male Mazama americana collected in French Guiana and proposed as neotype.
Figure 4 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure 4 Distance tree (cluster analysis) made with cranial measurements of different M. americana cytotypes, in parenthesis, found in Brazil (SA-Santarém, JU-Juína, RO-Rondônia, PR-Paraná, CA-Carajás) compared to M. americana neotype and other Mazama species (M. gouazoubira, M. nemorivaga and M. bororo).
Figure 7 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure 7 Basic karyotype belonging to the M. americana neotype (2n = 45 FN = 51 +3 Bs) under G-band and its schematic representation to facilitate future comparisons.
Supplementary material 1 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Table S1. Samples used in this study for genetic analysis
Supplementary material 5 from: Cifuentes-Rincón A, Morales-Donoso JA, Sandoval EDP, Tomazella IM, Mantellatto AMB, de Thoisy B, Duarte JMB (2020) Designation of a neotype for Mazama americana (Artiodactyla, Cervidae) reveals a cryptic new complex of brocket deer species. ZooKeys 958: 143-164. https://doi.org/10.3897/zookeys.958.50300
Figure S2. Phylogenetic tree of the D-Loop gene
FIGURE 1 in A new species of Eostyloceros (Cervidae, Artiodactyla) from the Late Miocene of the Linxia Basin in Gansu, China
FIGURE 1. Location of Gaojiashan of the Linxia Basin in Hezheng County, Gansu Province, China.
FIGURE 2 in A new species of Eostyloceros (Cervidae, Artiodactyla) from the Late Miocene of the Linxia Basin in Gansu, China
FIGURE 2. Terminology of cervid cheek teeth (after Dong 2004). A, premolar; B. molar.
Figure 31 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 31. Reconstruction of the Ham 3 A. latipes skeleton in quadrupedal stance, supplemented by some elements from A. commune specimens from the Gypse of Montmartre and Antony (especially parts of the vertebral column – see text) and from scaled up A. laurillardi specimens from the Quercy Phosphorites (cranium, MNHN.Qu399) and La Débruge (dentary, BMNH.30622). Left lower forelimb and pes shown at maximum extension relative to humerus and tibia + fibula, respectively. Forelimbs pronated. Scale bar = 100 mm.
Figure 29 in Bipedal browsing adaptations of the unusual Late Eocene-earliest Oligocene tylopod Anoplotherium (Artiodactyla, Mammalia)
Figure 29. Bipedal browsing adaptations in living and extinct mammal genera, expanded from Coombs (1983: fig. 4).
Supplementary material 2 from: Harding LE (2022) Available names for Rangifer (Mammalia, Artiodactyla, Cervidae) species and subspecies. ZooKeys 1119: 117-151. https://doi.org/10.3897/zookeys.1119.80233
Genetic distance
Supplementary material 1 from: Harding LE (2022) Available names for Rangifer (Mammalia, Artiodactyla, Cervidae) species and subspecies. ZooKeys 1119: 117-151. https://doi.org/10.3897/zookeys.1119.80233
Synonymy
Supplementary material 1 from: Rezić A, Safner T, Iacolina L, Bužan E, Šprem N (2022) Traces of past reintroduction in genetic diversity: The case of the Balkan chamois (Mammalia, Artiodactyla). ZooKeys 1116: 57-70. https://doi.org/10.3897/zookeys.1116.84577
Tables and figures
Text-fig. 17. Biostratigraphic correlations of Moghara, Egypt, and Gebel Zelten, Libya, with inferred age ranges in millions of years. ELMA – European Land Mammal Age (MN – Mammal Neogene Zone) (Mein 1989), FS – East African Faunal Set (Pickford 1981). The double-headed arrow is the range of ages obtained by Strontium isotope dating analyses (Hassan et al. 2013). in New Suoid Fossils (Mammalia, Artiodactyla) From The Miocene Of Moghara, Egypt, And Gebel Zelten, Libya: Biochronological Implications
Text-fig. 17. Biostratigraphic correlations of Moghara, Egypt, and Gebel Zelten, Libya, with inferred age ranges in millions of years. ELMA – European Land Mammal Age (MN – Mammal Neogene Zone) (Mein 1989), FS – East African Faunal Set (Pickford 1981). The double-headed arrow is the range of ages obtained by Strontium isotope dating analyses (Hassan et al. 2013).
Fig. 1 in Axis axis (Artiodactyla: Cervidae)
Fig. 1.—Adult male Axis axis. Photograph by Paul Wild used with permission.
Fig. 2 in Axis axis (Artiodactyla: Cervidae)
Fig. 2.—Geographic distribution of the native populations of Axis axis.
Fig. 3 in Kobus vardonii (Artiodactyla: Bovidae)
Fig. 3.—Geographic distribution of Kobus vardonii. Redrawn from Jenkins (2013).
TABLE 1 in Systematic revision of the family Hoplitomerycidae Leinders, 1984 (Artiodactyla: Cervoidea), with the description of a new genus and four new species
<p><b>TABLE 1.</b> Body mass estimations (BM, in kg) for four <i>Hoplitomeryx</i> size (length) classes inferred from postcranial elements and dental material, taken the averages of all individual elements. For equations, see Material and Methods, for details see Appendix I for postcranial material and Appendix II for dental material.</p><table><tbody><tr><th></th><th>Postcranial material Range (average)</th><th>Number of elements</th><th>Dental material</th><th>Number of elements</th></tr></tbody><tbody><tr><th>Size class 1</th><td>8.9–35.8 (21.0)</td><td>32</td><td>20.5–32.1 (26.1)</td><td>8</td></tr><tr><th>Size class 2</th><td>25.2–67.5 (44.3)</td><td>19</td><td>34.8–59.8 (44.3)</td><td>10</td></tr><tr><th>Size class 3</th><td>62–89.8 (78.0)</td><td>9</td><td>70.1–74.4 (70.2)</td><td>3</td></tr><tr><th>Size class 4</th><td>85.3–113.4 (103.4)</td><td>7</td><td>-</td><td>-</td></tr></tbody></table>
Fig. 5 in Bos grunniens and Bos mutus (Artiodactyla: Bovidae)
Fig. 5.—Wild yak (Bos mutus) adult females and calves in Yeniugou, central Qinghai, China. Photograph courtesy of Milo Burcham (www.milophotos.com).
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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.