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Figure 1 from: Shaverdo H, Sumoked B, Balke M (2017) Descriptions of two new species and one new subspecies from the Exocelina okbapensis-group, and notes on the E. aipo-group (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 715: 17-37. https://doi.org/10.3897/zookeys.715.15913
Figure 1 - Exocelina manfredi (Balke, 1998), male protarsomeres 4–5 in lateral view A paratype, Borme B Aipomek-Takime.
Fig. 3 in A new subspecies of Pierella lena (Lepidoptera: Nymphalidae: Satyrinae) in northeastern Brazil
Fig. 3. Geographical distribution of the subspecies of Pierella lena based only on collection specimens
FIGURE 32 in Three new species, one subspecies, and new records of the Oriental genus Loeblites Franz (Coleoptera: Staphylinidae: Scydmaeninae)
FIGURE 32. Distribution of nominal species of Loeblites.
FIGURE 7. The Kalmius River near Pyshchevyk village. 1 June 2006 in DNA barcode based phylogeographic analysis of the Aricia anteros (Freyer, 1838) species complex (Lepidoptera: Lycaenidae) with description of a new subspecies from SE Europe
FIGURE 7. The Kalmius River near Pyshchevyk village. 1 June 2006. Photo: R. Botman.
Figs. 3-5 in A new subspecies of Globicornis Latreille in Cuvier, 1829 (Coleoptera: Dermestidae: Megatominae) from Cyprus.
Figs. 3-5.- Globicornis (Globicornis) signatipennis cypriensis ssp. nov. Fig. 6.- Globicornis (Globicornis) 3.- Antenna of male. 4.- Antenna of female. 5.- Aedeagus. signatipennis signatipennis Pic: antenna of male.
Figs. 1-2 in A new subspecies of Globicornis Latreille in Cuvier, 1829 (Coleoptera: Dermestidae: Megatominae) from Cyprus.
Figs. 1-2.- Globicornis (Globicornis) signatipennis cypriensis ssp. nov. from Cyprus. 1.- Holotype (male). 2.- Paratype (female).
FIGURE 5 in Morphological and genetic diversification of Old-World marbled newts, with the description of a new and 'not-at-all-cryptic' subspecies from the Iberian Peninsula (Triturus, Salamandridae)
FIGURE 5 Results of a principal component analysis on size corrected morphometric data for Triturus pygmaeus pygmaeus (solid lines) and T. p. lusitanicus ssp. nov. (interrupted lines). The ellipses show the 95% confidence interval of the mean. The left panel is for males and the right panel is for females. Percentages of total variance explained are indicated along the axes. For details, see text.
FIGURE A2 in Morphological and genetic diversification of Old-World marbled newts, with the description of a new and 'not-at-all-cryptic' subspecies from the Iberian Peninsula (Triturus, Salamandridae)
FIGURE A2 Holotype of Triturus pygmaeus lusitanicus ssp. nov. in live condition, at the left (top) and right dorso-lateral view (middle), and in ventral view (bottom). The scale bar equals 10 mm.
FIGURE 1 in Morphological and genetic diversification of Old-World marbled newts, with the description of a new and 'not-at-all-cryptic' subspecies from the Iberian Peninsula (Triturus, Salamandridae)
FIGURE 1 Distribution of marbled newts in the Iberian Peninsula with Triturus marmoratus in blue and T. pygmaeus in red (after Wielstra et al., 2014). The arrow indicates the position of a T. pygmaeus subspecies border inside Doñana National Park (present paper). Downloaded from Brill.com 07/10/2024 02:00:28PM via Open Access. This is an open access article distributed under the terms of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
FIGURE A1 in Morphological and genetic diversification of Old-World marbled newts, with the description of a new and 'not-at-all-cryptic' subspecies from the Iberian Peninsula (Triturus, Salamandridae)
FIGURE A1 Variation in ventral colouration of Triturus pygmaeus. Top row – T. p. lusitanicus ssp. nov.: male (with dark tail underside) and two females from Villalba and male from Cardeña. Middle row – T. p. pygmaeus: male from Salinas, male and female from Los Barrios and male from Rio Alberite. Bottow row – T. p. pygmaeus: two males and two females from Rio Alberite. PHOTOGRAPHY L. A. VAN DER LAAN
Figure 1 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 1 Geographical distribution of Phrynocephalus mystaceus and locations of the sites where the samples that were examined in the molecular analyses of the present study were obtained. Locality numbers correspond to those given in Table 1. Dot in the center of a circle indicates the type locality; type localities for taxa are shown as follows: A Lacerta mystacea Pallas, 1776 B Megalochilus mystaceus dagestanica Ananjeva, "1986" 1987 C Phrynocephalus mystaceus aurantiacocaudatus Semenov & Shenbrot, 1990 D Phrynocephalus mystaceus galli Krassowsky, 1932; and E Ph. mystaceus khorasanus ssp. n.
Figure 2 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 2 BI-inferred dendrogram that illustrates the phylogenetic relationships of the Phrynocephalus mystaceus species complex based on the analysis of 654 b. p. fragment of COI gene (mtDNA). Numbers at the tree nodes show Bayesian Posterior Probabilities/ Maximum Likelihood Bootstrap Support. Only PP values higher than 0.90 and BS values higher than 75% are shown. COI sequence of Trapelus sanguinolentus is used as an outgroup.
Figure 11 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 11 ZMMU R-6412, holotype of Phrynocepahlus mystaceus aurantiacocaudatus Semenov & Shenbrot, 1990 in preservative: A dorsal view B ventral view C head in dorsal view D head in frontal view E head in lateral view F right foot in thenar view (photographs by E. N. Solovyeva).
Figure 9 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 9 Typical habitat of Ph. mystaceus khorasanus ssp. n. at the type locality in the vicinity of Gonabad, Khorasan Razavi Province, Iran (photo by R. A. Nazarov).
Figure 10 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 10 ZMMU R-6413, lectotype of Phrynocepahlus mystaceus galli Krassowsky, 1932 in preservative: A dorsal view B ventral view C head in dorsal view D head in frontal view E head in lateral view F left foot in thenar view (photographs by E. N. Solovyeva).
Figure 4 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 4 Statistically significant morphological differences between Ph. mystaceus khorasanus ssp. from Iran and other Ph. mystaceus: A the number of subdigital lamellae on the toe III (SLIII) B the number of subdigital lamellae on the toe IV (SLIV) C the total number of supralabial scales (SL) D the relative length of the dark distal part of the tail to the total tail length (TL-black/TL) E number of flat infralabials anterior to the angular enlarged spine-like infralabial scales (IlbA).
Figure 8 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 8 Paratypes of Ph. mystaceus khorasanus ssp. n. in preservative: A in dorsal view B in ventral view (photographs by E. N. Solovyeva).
Figure 7 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 7 Holotype of Ph. mystaceus khorasanus ssp. n. in preservative: A dorsal view B ventral view C head in dorsal view D head in frontal view E head in lateral view; F right foot in thenar view (photographs by E. N. Solovyeva).
Figure 3 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 3 Statistically significant morphological differences between Ph. mystaceus khorasanus ssp. from Iran and other subspecies of Ph. mystaceus: A the number of subdigital lamellae on the toe IV (SLIV) B the number of enlarged triangular scales on the lateral fringe of the toe III (FrIII) C the total number of supralabial scales (SL) D the relative length of the dark distal part of the tail to the total tail length (TL-black/TL).
Figure 6 from: Solovyeva EN, Dunayev EN, Nazarov RA, Radjabizadeh M, Poyarkov Jr NA (2018) Molecular and morphological differentiation of Secret Toad-headed agama, Phrynocephalus mystaceus, with the description of a new subspecies from Iran (Reptilia, Agamidae). ZooKeys 748: 97-129. https://doi.org/10.3897/zookeys.748.20507
Figure 6 Ph. mystaceus in life: A subadult Ph. mystaceus khorasanus ssp. n., orange lower surface of the tail is shown, Iran (photograph by R. A. Nazarov) B Ph. mystaceus khorasanus ssp. n., female, Iran (photo by R. A. Nazarov) C Ph. m. mystaceus, Russia, Astrakhan region, Dosang (photograph by E. A. Dunayev) D Ph. m. mystaceus, Dagestan, Sarykum sands (photograph by E. A. Dunayev) E Ph. m. mystaceus, Uzbekistan, Qarakalpaqiston (corresponds to the previously recognized subspecies "galli"; photograph by E. A. Dunayev) F Ph. m. mystaceus, Dagestan, Sarykum sands (corresponds to the previously recognized subspecies "dagestanica"; photograph by E. A. Dunayev) G Ph. m. aurantiacocaudatus, E Kazakhstan, SE Balkash Lake (photograph by E. N. Solovyeva) H Ph. m. aurantiacocaudatus, E Kazakhstan, SE Balkash lake (photograph by E. N. Solovyeva) I Ph. m. mystaceus, Russia, Astrakhan region, Dosang (photograph by E. A. Dunayev).
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
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.
DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
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.