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198 results for “Zagros”
FIGURE 1. Dionysia avia. A in Donysia avia (Primulaceae), a new species from Zagros Mountains, Iran
FIGURE 1. Dionysia avia. A. Flowering branch with corolla tube cut slightly above the calyx lobes; B. Corolla of short
FIGURE 3 in A new species of Acanthodactylus Fitzinger, 1834 (Sauria: Lacertidae) from the Zagros Mountains, Iran
FIGURE 3. Morphology of Acanthodactylus zagrosicus sp. nov. (Holotype ZFMK103173(♂) and paratype ZFMK103174(♀)). (A) Holotype, dorsal view of head; (B) Holotype, ventral view of head; (C) Holotype, temporal region and supratemporal scales, right side; (D) Holotype, lateral view of head, right side; (E) Paratype, lateral view of head, right side; (F) Ventral view of hind limb and fourth toe; (G) Holotype, dorsal scales; (H) Holotype, caudal scales in fifth annulus; (I) Holotype, ventral view of hind limbs and femoral pores; (J) Paratype, Dorsal view and coloration.
FIGURE 2. Phylogenetic tree concluded using Cyt b in A new species of Acanthodactylus Fitzinger, 1834 (Sauria: Lacertidae) from the Zagros Mountains, Iran
FIGURE 2. Phylogenetic tree concluded using Cyt b gene for Acanthodactylus species. The topologies of BI and ML trees are the same, therefore only the ML tree is shown. Numbers on branches indicate posterior probabilities (above) and bootstrap supports (below). Only values greater than 0.9 (for the former) and 90 (for the latter) are shown.
FIGURE 1 in A new species of Acanthodactylus Fitzinger, 1834 (Sauria: Lacertidae) from the Zagros Mountains, Iran
FIGURE 1. Type locality of Acanthodactylus zagrosicus sp. nov. (ZFMK103173(♂) and ZFMK103174(♀)) along with distri- bution of all boskianus group species. For more details, see Table 1.
An evaluation of isolation by distance (IBD) and isolation by resistance (IBR) on genetic structure of the Persian squirrel (Sciurus anomalus) in the Zagros forests of Iran
<p>For conservation of wild species, it is important to understand how landscape change and land management can affect gene flow and movement. Landscape genetic analyses provide a powerful approach to infer effects of various landscape factors on gene flow, thereby informing conservation actions. The Persian squirrel is a keystone species in the woodlands and oak forests of Western Asia, where it has experienced recent habitat loss and fragmentation. We conducted landscape genetic analyses of individuals sampled in the northern Zagros Mountains of Iran (provinces of Kurdistan, Kermanshah, and Ilam), focusing on evaluation of isolation by distance (IBD) and isolation by resistance (IBR), using 16 microsatellite markers. The roles of geographical distance and landscape features including roads, rivers, developed areas, farming and agriculture, forests, lakes, plantation forests, rangelands, shrublands and rocky areas of varying canopy cover, and swamp margins on genetic structure were quantified using individual-based approaches and resistance surface modelling. We found a significant pattern of IBD but only weak support for an effect of forest cover on genetic structure and gene flow. It seems that geographical distance is an important factor limiting the dispersal of the Persian squirrel in this region. The results of the current study inform ongoing conservation programs for the Persian squirrel in the Zagros oak forest.</p>
An evaluation of isolation by distance (IBD) and isolation by resistance (IBR) on genetic structure of the Persian squirrel (Sciurus anomalus) in the Zagros forests of Iran
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Fig. 8 in Cranial phenotypic variation in Meriones crassus and M. libycus (Rodentia, Gerbillinae), and a morphological divergence in M. crassus from the Iranian Plateau and Mesopotamia (Western Zagros Mountains)
Fig. 8. Dendograms obtained from the (A) NJ clustering and (B) UPGMA, using Euclidean distances between group means by combining all data (shape information from dorsal, ventral and lateral views). Branch bootstrap support shown at the nodes, 10 000 replicates.
Fig. 2 in Cranial phenotypic variation in Meriones crassus and M. libycus (Rodentia, Gerbillinae), and a morphological divergence in M. crassus from the Iranian Plateau and Mesopotamia (Western Zagros Mountains)
Fig. 2. Landmarks positioned on the cranium of Meriones crassus Sundevall, 1842 shown in (A) ventral (B) dorsal and (C) lateral views. The straight lines on the ventral and lateral views were used for defining semi-landmarks based on two other landmarks. Open circles on the ventral side: the most rostral and on the most caudal point of the tympanic bulla, and on the lateral side: the most rostral margin of the tympanic bulla. Short lines are drawn to highlight sutures which are unclear here and on which the landmarks have been defined.
Fig. 5 in Cranial phenotypic variation in Meriones crassus and M. libycus (Rodentia, Gerbillinae), and a morphological divergence in M. crassus from the Iranian Plateau and Mesopotamia (Western Zagros Mountains)
Fig. 5. Box-and-whisker plots of (A) skull size and (B) relative bulla size of the ventral cranium. The boxes indicate the 25–75 % quartiles; the whiskers represent the minimal and maximal values.
Figure 5 from: Wrase DW, Assmann T (2021) A new Parazuphium Jeannel, 1942 species (Coleoptera, Carabidae) from the Zagros Mountains in Iran. ZooKeys 1011: 41-50. https://doi.org/10.3897/zookeys.1011.59449
Figure 5 Habitat of Parazuphium weigeli sp. nov. A landscape B microhabitat with the stone under which the two individuals were found. Photographs by Andreas Weigel.
Figure 2 from: Wrase DW, Assmann T (2021) A new Parazuphium Jeannel, 1942 species (Coleoptera, Carabidae) from the Zagros Mountains in Iran. ZooKeys 1011: 41-50. https://doi.org/10.3897/zookeys.1011.59449
Figure 2 Parazuphium weigeli sp. nov. A head in lateral view (holotype) B apex of elytra (paratype).
Figure 3 from: Wrase DW, Assmann T (2021) A new Parazuphium Jeannel, 1942 species (Coleoptera, Carabidae) from the Zagros Mountains in Iran. ZooKeys 1011: 41-50. https://doi.org/10.3897/zookeys.1011.59449
Figure 3 Median lobe of aedeagus of Parazuphiuma, c, d, f lateral views b, e, g view onto oroficium (preputial field) a, bP. weigeli sp. nov. cP. damascenumd, eP. salmonif, gP. chevrolatii.
FIGURE 1 in Two new Gammarus species (Crustacea: Amphipoda: Gammaridae) from Zagros Mountains, Iran
FIGURE 1. Map of Hamadan and Kermanshah provinces with sampling sites.
FIGURE 1 in Description of new endemic species of the genus Niphargus Schiödte, 1849 (Amphipoda: Niphargidae) from a karst spring in Zagros Mountains in Iran
FIGURE 1. Distribution map of the genus Niphargus in Iran.
FIGURES 30–31 in Study of Laemostenus species across Zagros and Central zone of Iran, with the description of seven new cavernicolous species and notes on subgenus Iranosphodrus (Coleoptera: Carabidae: Sphodrini)
FIGURES 30–31. Ovipositor. Laemostenus yazdensis (30), Laemostenus troglophilus (31).
FIGURES 24–25 in Study of Laemostenus species across Zagros and Central zone of Iran, with the description of seven new cavernicolous species and notes on subgenus Iranosphodrus (Coleoptera: Carabidae: Sphodrini)
FIGURES 24–25. Mesosternum of Laemostenus yazdensis, (24), Laemostenus troglophilus (25).
FIGURES 20–21 in Study of Laemostenus species across Zagros and Central zone of Iran, with the description of seven new cavernicolous species and notes on subgenus Iranosphodrus (Coleoptera: Carabidae: Sphodrini)
FIGURES 20–21. Ovipositor. Laemostenus zagrosensis (20), Laemostenus farsicus (21).
Fig 4. a-b in Parurgonina Valanginiana N. Sp. From The Valanginian Of Sw Iran (Zagros Zone): The First Cretaceous Record Of The Genus
Fig 4. a-b. Parurgonina caelinensis (Cuvillier et al.), (modified from Velić, 2007, pl. 10, figs. 10-11) from the Upper Jurassic of Croatia and Parurgonina valanginiana sp. nov. (c.) from the Lower Cretaceous of Iran. Red dotted lines mark the septa of the rectilinear chambers.
Fig. 2 in Parurgonina Valanginiana N. Sp. From The Valanginian Of Sw Iran (Zagros Zone): The First Cretaceous Record Of The Genus
Fig. 2. Lithological log of the Kuh-e Siah section with distribution of larger benthic foraminifera and calcareous green algae.
FIGURE 7 in A new species of the genus Microgecko Nikolsky, 1907 (Sauria: Gekkonidae) from the southern Zagros Mountains, Iran
FIGURE 7. Microgecko helenae fasciatus from Ilam Province. Photo: A. Gholamifard.
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
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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
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