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FIGURE 1 in Another New Bent-toed Gecko, genus Cyrtodactylus Gray 1837 (Squamata: Gekkonidae), from Borneo
FIGURE 1. Map of Borneo showing distribution of Bornean Cyrtodactylus based on type localities, except C. malayanus which has an unknown type locality, and including three undescribed species in Davis et al 2020: C. baluensis (red star), C. cavernicolus (blue star), C. consobrinus (yellow pentagon), C. hamidyi sp. nov. (black circle), C. hantu (yellow star), C. ingeri (purple star), C. limajalur (white pentagon), C. matsuii (white star), C. miriensis (blue pentagon), C. muluensis (black star), C. yoshii (red pentagon), C. pubisulcus (black pentagon), C. sp1 (purple circle), C. sp2 (yellow circle) and C. sp3 (white circle), C. Base map modified from Wikipedia © Sadalmelik / Wikimedia Commons.
FIGURE 2 in High haplotype diversity in a microendemic Malagasy gecko species, Lygodactylus mirabilis (Pasteur, 1962)
FIGURE 2: Three-dimensional plot of pairwise uncorrected p-distances for the cytochrome b (x-axis) and 16S rRNA (yaxis) markers. The number of observation (z-axis) indicates the number of times that a defined combination of cytochrome b – 16S distances has been observed.
FIGURE 4 in High haplotype diversity in a microendemic Malagasy gecko species, Lygodactylus mirabilis (Pasteur, 1962)
FIGURE 4: Mismatch distribution graph of the 27 mtDNA sequences (1251 bp, cytochrome b and 16S rRNA genes) in L. mirabilis. The solid line with diamonds represents the observed distribution curve and the diamonds are the relative frequencies of nucleotide differences between pair of individuals. The tick solid line represents the distribution expected from an expanding population. Dashed lines indicate the 95% confidence interval. Additional information can be found in the Materials and Methods.
FIGURE 1 in Relationships, evolution and biogeography of Semaphore geckos, Pristurus (Squamata, Sphaerodactylidae) based on morphology
FIGURE 1. Distribution of Pristurus. The Socotra archipelago is indicated by arrows off the Horn of Africa, and consists, from east to west, of Socotra itself, Samhan and Darsa, and Abd al Kuri. The isolated range of Pristurus adrarensis in Mauretania is indicated by a star.
FIGURE 4 in Relationships, evolution and biogeography of Semaphore geckos, Pristurus (Squamata, Sphaerodactylidae) based on morphology
FIGURE 4. Apparent relationships of 20 species of Pristurus based on 72 morphological characters equivalent to 86 binary ones. The tree shown is a strict consensus of 32 produced by parsimony analysis; figures indicate bootstrap support for nodes based on 1000 replicates.
Figure 1 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)
Figure 1. Bayesian phylogeny of sphaerodactyl genera from the concatenated nuclear gene data. Nodes with black circles possess posterior probabilities>0.95. Unique indels from protein-coding regions are indicated along with the gene name. Both RAG1 and C-MOS possessed multiple unique indels and each is numbered sequentially starting with the most 5′ indel and moving in the 3′ direction. Photos by L. J. Vitt, T. Gamble, and M. Hoogmoed.
Figure 4 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)
Figure 4. Log-transformed terminal scale width plotted against log-transformed snout-vent length (SVL) for 85 specimens of nine lineages of Heteronotia binoei. Colours indicate lineage and symbol shape indicates habitat use (ecology). The blue line represents the line of best fit. For a given SVL, saxicoline lineages generally have wider terminal scales than do terrestrial or generalist lineages.
Figure 3 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)
Figure 3. Microhabitat use of Heteronotia binoei lineages. Bars show the proportion of observations for each lineage that were found on the ground (orange), on rock (grey), or on trees (green). The numbers of observations for each lineage are shown below each bar. While CC, MI, Paluma-E and Paluma-W are saxicoline (> 75% on rocks), Blencoe is terrestrial (> 75% on ground) and the remaining linages are generalist.
Figure 6 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)
Figure 6. Boxplots illustrating variation in subdigital scale area and micro-ornamentation among the four focal lineages of Heteronotia binoei. The x-axis represents functional scale regions. Terrestrial lineages appear as warm colours (EA6 in yellow, Blencoe in red), while saxicoline lineages appear as cool colours (CC in blue, Paluma-W in purple). A, size-adjusted scale area of the terminal (FD) and subinflection (IN) scales. B, setae length (µm) across the five scale regions. C, setae spacing (µm) across the five scale regions. D, number of branching events of the setae on the FD and IN scales. The SEM image at the bottom illustrates the different functional scale regions of the toe (as in Fig. 2).
FIGURE 5 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)
FIGURE 5.Cnemaspis assamensis (ZSIWGRC3068): (A) Fore limb–Manus (B) Hind limb–Pes (C) Dorsal side of the tail (D) Ventral side of the tail.
FIGURE 4 in First exact record and phylogenetic position of the gecko Ptyodactylus hasselquistii (Squamata: Phyllodactylidae) from Lebanon
FIGURE 4. Pictures of Ptyodactylus hasselquistii krameri (NMBA 5288). (A) dorsal view, (B) ventral view, (C) dorsal view of tail, (D) dorsal view of habitus, (E) dorsal view of head, (F) ventral view of head, (G) lateral view of head, and (H) ventral view of left forelimb digits. Images by David A. Marques, Naturhistorisches Museum Basel, Switzerland.
Figure 3. Maximum likelihood phylogeny showing the relationships among Indo-Burmese Cyrtodactylus species using mitochondrial NADH dehydrogenase subunit 2 in Morphological and molecular phylogenetic data reveal another new species of bent-toed gecko (Cyrtodactylus Gray: Squamata: Gekkonidae) from Mizoram, India
Figure 3. Maximum likelihood phylogeny showing the relationships among Indo-Burmese Cyrtodactylus species using mitochondrial NADH dehydrogenase subunit 2 gene. Numbers at each node are bootstrap support values. Preceding each species name is the NCBI accession number.
FIGURE 3 in Revision of the New Zealand gecko genus Hoplodactylus, with the description of a new species
FIGURE 3. Details of: A-D, Hoplodactylus tohu n. sp., holotype (RE.000503); and E-H, Hoplodactylus duvaucelii Duméril & Bibron, 1836, topotype (RE.003491): A, E, right-lateral view of head; B, F, oblique right-lateroventral view of head, with diagnostic characters (a) pronounced brillar fold, and (b) abrupt size decrease at the 5th infralabial scale; C, G, ventral view of the right manus showing subdigital lamellae, and highlighting the less emergent claw on the first digit in H. duvaucelii; D, H, ventral view of the right pes showing subdigital lamellae. Automontage images generated by Jean-Claude Stahl (NMNZ). Scale bar = 10 mm.
FIGURE 2 in A new species of Phyllurus leaf-tailed gecko (Lacertilia: Carphodactylidae) from Scawfell Island, mid-east Queensland, Australia
FIGURE 2. Holotype of P. fimbriatus sp. nov. (QM J97578). Photos: (A) Edward Evans; (B) Conrad Hoskin.
FIGURE 7 in Hemidactylus paucifasciatus (Squamata: Gekkonidae), a new species of large-bodied, tuberculate gecko from Northern Odisha, India
FIGURE 7. Habitat photo of Hemidactylus paucifasciatus sp. nov. from Gadachandi Temple, Anandapur, Kendujhar District, Odisha State, India. Photo Pratyush P. Mohapatra.
FIGURE 1 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 1. Western Indian Ocean Islands inhabited by Lygodactylus taxa treated in this paper. Pemba Island: occupied by the endemic Lygodactylus pakenhami. Juan de Nova Island: colonized by the endemic Lygodactylus insularis. Europa Island: inhabited by the Malagasy Lygodactylus verticillatus. The basemap of this figure was provided by Esri, DigitalGlobe, GeoEye, i-cubed, USDA FSA, USGS, AEX, Getmapping, Aerogrid, IGN, IGP, swisstopo, and the GIS User Community.
FIGURE 2 in Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
FIGURE 2. Adult specimens of four species of the Lygodactylus capensis group. Lygodactylus capensis (sensu stricto) from Pretoria, South Africa. a) Neutral coloration. b) Color change in response to stress. Lygodactylus insularis from Juan de Nova Island. c) Neutral coloration. d) Color change in response to stress. Lygodactylus grotei from Tanzania. Neutral coloration. e) Dorsal view, f) lateral view. No color change in response to stress observed. Lygodactylus pakenhami from Pemba Island. g) Neutral coloration. h) Color change in response to stress.
Figure S2. Majority-rule consensus tree from a in Supplementary Materials for Phylogeny of dwarf geckos of the genus Lygodactylus (Gekkonidae) in the Western Indian Ocean
Figure S2. Majority-rule consensus tree from a Bayesian Inference analysis of the Lygodactylus capensis group based on 13 concatenated nucDNA and mtDNA sequences. Node supports are indicated by posterior probabilities.
FIGURE 1. A in Additions to the herpetofauna of Hon Son Island, Rach Gia Bay, Kien Giang Province, southern Vietnam with a discussion of syntopy between the granite cave-adapted Bent-toed Gecko Cyrtodactylus eisenmanae and a new Cyrtodactylus of uncertain taxonomic status
FIGURE 1. A. Distribution of the Vietnamese islands in Rach Gia Bay off the southern terminus of the Mekong Delta in Cambodia and Vietnam showing the location of the islands Hon Son—location of Cyrtodactylus eisenmanae, C. condorensis, and Cyrtodactylus sp.; Hon Tre—location of C. hontreensis, and C. condorensis; and the granitic Tuc Dup Hill in southern Vietnam—location of C. grismeri. B. Topography of Hon Son Island.
FIGURE 5 in Additions to the herpetofauna of Hon Son Island, Rach Gia Bay, Kien Giang Province, southern Vietnam with a discussion of syntopy between the granite cave-adapted Bent-toed Gecko Cyrtodactylus eisenmanae and a new Cyrtodactylus of uncertain taxonomic status
FIGURE 5. Granite cave-adapted geckos from Tuc Dup Hill: A. Cnemaspis tucdupensis (LSUDPC 13291) B. Gekko vietnamensis (LSUDPC 13292). C. Cyrtodactylus grismeri (LSUDPC 13293). Granite cave-adapted geckos from Hon Tre Island. D. Cnemaspis caudanivea (LSUDPC 3054). E. Cyrtodactytlus hontreensis (LSUDPC 3067).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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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.