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Figure 7 in An integrative taxonomic revision of the Tarentola geckos (Squamata, Phyllodactylidae) of the Cape Verde Islands

Figure 7. Photographs of the dorsal and lateral views of Tarentola of the Cape Verde Islands. A1, T. boavistensis; A2, T. bocagei; A3, T. fogoensis; A4, T. darwini; B1, T. substituta; B2, T. raziana; B3, T. caboverdiana; C, T. nicolauensis; D1, T. gigas (T. gigas brancoensis on the left and T. gigas gigas on the right); D2, T. rudis; D3, T. protogigas protogigas; D4, T. p. hartogi from Brava Island; D5, T. p. hartogi from Rombos Islets; D6, T. maioensis.

opennotspecifiedJan 2012View details →
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Figure 1 in An integrative taxonomic revision of the Tarentola geckos (Squamata, Phyllodactylidae) of the Cape Verde Islands

Figure 1. Map of the Cape Verde Islands showing the geographical location (latitudes and longitudes) and altitudes of the islands and the origins of the new Tarentola samples included in the genetic (circles) and morphological (diamonds) analyses (Geographic Coordinate System, Datum WGS 84). Island and taxa colours match the colours used on the network analyses. No specimens were found on Sal.

opennotspecifiedJan 2012View details →
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Figure 6 in An integrative taxonomic revision of the Tarentola geckos (Squamata, Phyllodactylidae) of the Cape Verde Islands

Figure 6. Typical dorsal patterns of Tarentola species of the Cape Verde Islands (adapted from Joger, 1993).

opennotspecifiedJan 2012View details →
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Figure 9 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 9. Left manus and pes of sphaerodactyl geckos. A, B, Gonatodes albogularis (UIS-R-2079); C, D, Lepidoblepharis xantostigma (USNM 313791); E, F, Sphaerodactylus klauberi (UPRRP 006416); G, H, Pseudogonatodes guianensis (MZUSP 94826); I, J, Coleodactylus brachystoma (MZUSP uncatalogued); K, L, Chatogekko amazonicus (USNM 289061). Drawings not to the same scale. Abbreviations: I–V, digits; ads, anterior distal sesamoid; c, centrale; cd, distal carpal; f, fibula; mc-ph s, sesamoid dorsal to the metacarpal–phalange articulation; mt-ph s, sesamoid dorsal to the metatarsal– phalange articulation; ps, pisiform; r, radius; ra, radiale; t, tibia; td, distal tarsal; tp, proximal tarsal, u, ulna, ul, ulnare.

opennotspecifiedNov 2011View details →
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Figure 8 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 8. Articulated skeleton of Chatogekko sp. Specimen (USNM 289061) from Reserva Biologica Rio Trombetas, Pará, Brazil. Scale bar = 10 mm.

opennotspecifiedNov 2011View details →
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Figure 7 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 7. Hyoid apparatus of Chatogekko amazonicus specimen from Serra do Navio, Amapá, Brazil (AMNH R-138726). Abbreviations: 1 cb, first ceratobranchial; 1 eb, first epibranchial; 2 cb, second ceratobranchial; 2 eb, second epibranchial; bhy, basihyal; chy, ceratohyal; ehy, epihyal; ghy, glossohyal; hhy, hypohyal. Different shades of grey indicate the ossification of each element: grey, cartilaginous; white, ossified. Scale bar = 1 mm.

opennotspecifiedNov 2011View details →
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Figure 6 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 6. Inferred overlapping pattern among the medial bones of the snout in Chatogekko amazonicus specimen from Guyana (AMNH-R 132039). Grey indicates the overlap area; arrows indicate the place where each bone articulates. Abbreviations: asnp, ascending nasal process; n, nasal, f, frontal.

opennotspecifiedNov 2011View details →
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Figure 4. Chatogekko amazonicus specimens. A in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 4. Chatogekko amazonicus specimens. A, lateral view of the head showing 2–4 loreal scales (ls); B, dorsal view of the left hand showing the inner supero-lateral and outer supero-lateral (isl and osl, Fig. 5B); C, ventral view of the left hand showing the inner infero-lateral and outer infero-lateral (iil and oil, Fig. 5C); and D, keeled scales along the dorsal surface of the body. A–C, USNM 288775; D, MZUSP 91394. Scale bar = 1mm.

opennotspecifiedNov 2011View details →
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Figure 2 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 2. Cladograms for each nuclear locus and the concatenated nuclear gene dataset illustrating relationships among sphaerodactyl genera estimated using maximum likelihood. Branches with lengths not significantly different from zero are indicated with an asterisk.

opennotspecifiedNov 2011View details →
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Figure 11 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 11. Relative length of hand and foot digits with respect to digit 1 in representative species from each sphaerodactyl genus. Gonatodes albogularis (UIS-R-2079), Lepidoblepharis xantostigma (USNM 313791), Sphaerodactylus klauberi (UPRRP 006416), Pseudogonatodes guianensis (MZUSP 94826), Coleodactylus brachystoma (MZUSP uncatalogued), Chatogekko amazonicus (USNM 289061).

opennotspecifiedNov 2011View details →
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Figure 3 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 3. Phylogenetic relationships among sphaerodactyl genera estimated using (A) MDC (minimization of deep coalescence events) and (B) BCA (Bayesian concordance analysis). Node values on the MDC tree are bipartition frequencies from 1000 replicate analyses randomly sampled from the Bayesian posterior distributions of the individual gene trees. Node values on the BCA tree are posterior mean concordance factors.

opennotspecifiedNov 2011View details →
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Figure 10 in A new genus of miniaturized and pug-nosed gecko from South America (Sphaerodactylidae: Gekkota)

Figure 10. Palatal view of cleared and stained Chatogekko amazonicus specimen from Guyana (AMNH-R 132039) showing the secondary palate formed on the palatine. Abbreviations: bp, basipterygoid; bpcp, cartilaginous pad of the basipterygoid process; cc, choanal canal; ec, ectochoanal cartilage; fe, fenestra exochoanalis; pal, palatine; palvp, ventral process of the palatine; pmx-v f, premaxillary–vomer fenestra; pt, pterygoid; sof, suborbital fenestra; v, vomer; vp, vomerine process of palatine. Scale bar = 1 mm.

opennotspecifiedNov 2011View details →
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Figure 7 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)

Figure 7. Micro-ornamentation on the terminal (FD) scales. Terrestrial lineages are displayed on the left (A, C), whereas saxicoline lineages are on the right (B, D). Magnification of each tile is shown in the lower left corner, with a scale bar in the lower right corner. A, fully developed setae of the terrestrial EA6 lineage with an average length of 14 µm (Supporting Information, Table S2). B, fully developed setae of the saxicoline CC lineage (av. length 28 µm, Supporting Information, Table S2). C, detail of the branched setae tips with spatulae of the terrestrial EA6 lineage. White arrows indicate branching points of a single seta. D, detail of the branched setae tips with spatulae of saxicoline Paluma-W lineage. White arrows again indicate branching points of a single seta, illustrating that setae of the saxicoline lineages branch more often. Note the different magnifications between C and D, and to a lesser extend between A and B.

opennotspecifiedSep 2021View details →
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Figure 5 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)

Figure 5. Ancestral state reconstruction of size-adjusted terminal scale width. Trait values (depicted by the colour scale) at the tips represent the mean size-adjusted scale widths for each lineage. Colour bars at each node represent 95% confidence intervals for the ancestral state reconstruction. Habitat use (ecology) is indicated by shape (EA6 is marked as both generalist and terrestrial, see Results). The reconstruction shows that the Paluma-W lineage and the clade containing CC, MI, and Paluma-E have independently evolved enlarged terminal subdigital scales. Note that the low relative scale width of MI (relative to the other saxicoline lineages), is mainly driven by their large SVL (see Fig. 4).

opennotspecifiedSep 2021View details →
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Figure 1 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)

Figure 1. Relationships and distributions of Heteronotia binoei lineages used in this study. A, maximum likelihood phylogeny of the relevant lineages inferred from ND2 sequences using RAxML, with bootstrap support values shown (see Supporting Information, Fig. S2 for the full H. binoei phylogeny). Circles denote terrestrial or generalist lineages, while triangles denote saxicoline lineages. Lineages without accompanying symbols are not displayed on the adjacent map (B), and the CQ lineage (*) was not included for morphological analysis. B, distributions of the focal lineages in north-eastern Queensland, with symbols and colours matching the adjacent phylogeny (A). C, an individual of the CC lineage on a granite boulder. D, subdigital view on the right hindfoot (pes) of the generalist EA6 lineage, and E, the saxicoline MI lineage.

opennotspecifiedSep 2021View details →
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Figure 2 in Parallel evolution of toepads in rock-dwelling lineages of a terrestrial gecko (Gekkota: Gekkonidae: Heteronotia binoei)

Figure 2. Examples of micro-ornamentation classifications used in this study. A, short, unbranched spinules with pointed tips on the mid-distal (MD) scales of EA6. B, flattened tips (indicated by black arrows) of the setae on the proximal-most MD scale (bordering the sub-inflection scale) of Paluma-W. C, spatulae (indicated by white arrows) on the tips of the setae on the terminal FD scale of Paluma-W. D, subdigital SEM image of an EA6 toe illustrating the different functional scale regions. The red line illustrates the measurement of terminal scale width.

opennotspecifiedSep 2021View details →
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FIGURE 8 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)

FIGURE 8. Maximum Likelihood tree of Cnemaspis group based on ND2 gene with placement of Cnemaspis assamensis.

opennotspecifiedOct 2021View details →
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FIGURE 6 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)

FIGURE 6. Ventral portion showing Precloacal pores and Femoral pores (of: (A) holotype (ZRC.2.4674) and (B) additional material from Basistha (ZSIWGRC3068).

opennotspecifiedOct 2021View details →
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FIGURE 4 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)

FIGURE 4. Cnemaspis assamensis (ZSIWGRC3068): (A) Head dorsal (B) Head ventral (C) Head lateral (D) Dorsal side of trunk (E) Ventral side of the trunk (F) Lateral side of trunk.

opennotspecifiedOct 2021View details →
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FIGURE 1 in The odd one in: re-diagnosis and phylogenetic placement of the Assam Day Gecko Cnemaspis assamensis Das & Sengupta 2000 (Squamata: Gekkonidae)

FIGURE 1. (A) Habitat of Cnemaspis assamensis (Basistha). (B) Live Cnemaspis assamensis from Basistha.

opennotspecifiedOct 2021View details →

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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.

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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.

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Last verified 2026-04-29Open record