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42 results for “Gazella”
figure 5 Lineage through time plot within G. subgutturosa with cytb. The 95 in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 5 Lineage through time plot within G. subgutturosa with cytb. The 95% highest posterior density interval is shown in blue.
figure 3 Mismatch distributions within the G in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 3 Mismatch distributions within the G. subgutturosa. The expected line (green color) compared with the observed frequencies under the sudden expansion model using cytb. (A) the mmd diagram for the Asiatic population shows a recent expansion. (B) the mmd diagram for the Middle Eastern population and (C) the mmd diagram for the Central Iranian population.
figure 8 Potential distribution modeling for G. subgutturosa across different time periods, including a in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 8 Potential distribution modeling for G. subgutturosa across different time periods, including a) the Last Glacial Maximum (lgm; 21 Kya) and b) mid-Holocene (6 kya) as past scenarios, c) the present as a current scenario, and future climatic projections for 2070 are based on specific climate models (d: bcc-csm 1, rcp: 4.5; e: bcc-csm1, rcp: 6; f: ccsm 4, rcp: 4.5; g: ccsm 4, rcp: 6.0). Habitat suitability is visualized using color gradients, with blue representing the highest suitability Downloaded from Brill.com 06/21/2024 06:25:06PM and green representing the via lowestOpensuitability Access..This The is presence an openof access article distributed under the terms G. subgutturosa is denoted by a red dot. of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
figure 2 The dated phylogenetic trees using the cytb gene for G. subgutturosa. Blue bars show 95 in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 2 The dated phylogenetic trees using the cytb gene for G. subgutturosa. Blue bars show 95% highest posterior density intervals of the estimated node ages; numbers next to the nodes are mean node ages (Mya). The red and green lines show new haplotypes from this study.
figure 1 in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 1 Sampling locations of new specimens of G. subgutturosa from four locations in the present study. Parvar Protected Area, Sorkheh-Hesar National Park, Bashgol Protected Area, and Sohrein Protected Area. Hatched areas on the map indicate the provinces where each location is situated.
figure 6 in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 6 Median-joining haplotype network of G. subgutturosa using the cytb gene. The blue color Haplogroup refers to the Asiatic clade, the pink color Haplogroup is assigned to the Middle Eastern clade and the yellow color Haplogroup demonstrates the Central Iranian clade.
figure 7 in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 7 The biogeographic analysis of G. subgutturosa using s-diva (1) and bbm (2) based on cytb. For these analyses, three clades were considered: the Asiatic distribution (A), the Middle Eastern distribution (B), and the central Iranian distribution (C). The green and red circles around the nodes show vicariance and dispersal events, respectively.
Fig. 2 in Comparative analysis of the diet of Arctocephalus gazella (Pinnipedia), at two localities of the South Shetland Islands, with emphasis on the fish component
Fig. 2. Estimated standard length frequency distribution of Gymnoscopelus nicholsi (Gilbert, 1911), preyed on by Antarctic fur seals Arctocephalus gazella (Peters, 1875), at Stranger Point and Duthoit Point, South Shetland Islands, in February 2012.
Fig. 1 in Comparative analysis of the diet of Arctocephalus gazella (Pinnipedia), at two localities of the South Shetland Islands, with emphasis on the fish component
Fig. 1. The study area at South Shetland Islands: Stranger Point, King George Island/Isla 25 de Mayo and Duthoit Point, Nelson Island (modified from MALVÉ et al., 2014 and BRAUN et al., 2017).
Fig. 4 in Comparative analysis of the diet of Arctocephalus gazella (Pinnipedia), at two localities of the South Shetland Islands, with emphasis on the fish component
Fig. 4. Estimated standard length frequency distribution of Electrona antarctica (Gunther, 1878) preyed on by Arctocephalus gazella (Peters, 1875), at both sampling sites, Stranger Point and Duthoit Point, South Shetland Islands, in February 2012.
Fig. 3 in Comparative analysis of the diet of Arctocephalus gazella (Pinnipedia), at two localities of the South Shetland Islands, with emphasis on the fish component
Fig. 3. Estimated standard length frequency distribution of Pleuragramma antarctica (Boulenger, 1902) preyed on by Arctocephalus gazella (Peters, 1875), at both sampling sites, Stranger Point and Duthoit Point, South Shetland Islands, in February 2012.
Fig. 1. A–B. Cheiraster gazellae Studer, 1883 in The fossil record of the family Benthopectinidae (Echinodermata, Asteroidea), a reappraisal
Fig. 1. A–B. Cheiraster gazellae Studer, 1883, Recent, in abactinal (A) and actinal (B) views (A.S. Gale collection, unregistered). C–F. Pontaster tenuispinus (von Düben & Koren, 1846), Recent, in various views (A.S. Gale collection, unregistered), Rockall Trough, NE Atlantic. Scale bars: A–B = 7 mm; C–D = 5 mm; E–F = 10 mm.
Data from: Refinement of the Antarctic fur seal (Arctocephalus gazella) reference genome increases continuity and completeness
Open the record for dataset details and reuse information.
Data from: Terrestrial spatial distribution and summer abundance of Antarctic fur seals (Arctocephalus gazella) near Palmer Station, Antarctica, from drone surveys
Open the record for dataset details and reuse information.
Figure 7 in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 7. An adult male gazelle.
Figure 6. A in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 6. A calf caught for weighing.
Figure 3. A in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 3. A female gazelle prepared for measurement.
Figure 1 in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 1. Kızılkuyu Wildlife Reserve Area.
Figure 5. A in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 5. A newborn calf hidden in the field.
Figure 2 in Some morphological characteristics and neonatal weights of reintroduced gazelle (Gazella subgutturosa) in Turkey
Figure 2. Trap system for catching the gazelles.
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