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Figure 7 from: Lukhaup C, Eprilurahman R, Rintelen T (2017) Corrigenda: Cherax warsamsonicus, a new species of crayfish from the Kepala Burung (Vogelkop) peninsula in West Papua, Indonesia (Crustacea, Decapoda, Parastacidae) ZooKeys 660: 151–167. https://doi.org/10.3897/zookeys.660.11847. ZooKeys 665: 147-148. https://doi.org/10.3897/zookeys.665.12850

Figure 7 - Phylogenetic position of Cherax warsamsonicus sp. n. within closely related New Guinean Cherax species, reconstructed by BI analyses of two mitochondrial gene fragments. Number on branches show, from top, Bayesian posterior probabilities and ML/MP bootstrap values. The scale bar indicates the substitution rate. See Table 1 for information on the sequenced specimens. A Topology based on concatenated COI and 16S dataset B Topology based on COI dataset C Topology based on 16S dataset.

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Figure 2 from: Kaňuch P, Dorková M, Mikhailenko AP, Polumordvinov OA, Jarčuška B, Krištín A (2017) Isolated populations of the bush-cricket Pholidoptera frivaldszkyi (Orthoptera, Tettigoniidae) in Russia suggest a disjunct area of the species distribution. ZooKeys 665: 85-92. https://doi.org/10.3897/zookeys.665.12339

Figure 2 - Maximum-likelihood (ML) phylogenetic tree for 16 haplotypes of Pholidoptera frivaldszkyi (pf1–pf16; GenBank accession numbers KF706416–KF706428, KY554960–KY554962) with outgroup species (KC852400, KY554963–KY554966) based on a 778 bp fragment of the mtDNA COI gene. Tree topology and branch lengths of Bayesian inference were congruent with ML analysis. Nodes with significant support values are indicated (upper, ML bootstrap > 50%; lower, Bayesian posterior probability > 0.90).

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Figure 1 from: Kaňuch P, Dorková M, Mikhailenko AP, Polumordvinov OA, Jarčuška B, Krištín A (2017) Isolated populations of the bush-cricket Pholidoptera frivaldszkyi (Orthoptera, Tettigoniidae) in Russia suggest a disjunct area of the species distribution. ZooKeys 665: 85-92. https://doi.org/10.3897/zookeys.665.12339

Figure 1 - Sampled sites of Pholidoptera frivaldszkyi populations in Central and Eastern Europe. Three geographically homogeneous genetic clusters in the Carpathian Mountains defined by spatial analysis of molecular variance are colour coded according to Kaňuch et al. (2014). Arrows denote sites in eastern Romania where individuals that share the most similar haplotypes to populations found in Russia (ellipse) have occurred (see Fig. 2). The species range validated by the IUCN Red List (Hochkirch et al. 2016) is outlined by the dotted line.

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Figures 17-18 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figures 17-18 - 17 Exocelina wigodukensis sp. n. 18 E. pulukensis sp. n. A median lobe in ventral view B median lobe in lateral view C paramere in external view D male protarsomeres 4–5 in ventral view.

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Figures 15-16 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figures 15-16 - 15 Exocelina likui sp. n. 16 E. pui sp. n. A median lobe in ventral view B median lobe in lateral view C paramere in external view D male protarsomeres 4–5 in ventral view.

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Figures 13-14 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figures 13-14 - 13 Exocelina iratoi sp. n. 14 E. bagus (Balke & Hendrich, 2001) A median lobe in ventral view B median lobe in lateral view C paramere in external view D male protarsomeres 4–5 in ventral view.

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Figure 12 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figure 12 - Exocelina tomhansi sp. n. A median lobe in ventral view B median lobe in lateral view C paramere in external view D male protarsomeres 4–5 in ventral view.

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Figures 7-10 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figures 7-10 - Habitus and coloration 7 Exocelina likui sp. n. 8 E. pui sp. n. 9 E. wigodukensis sp. n. 10 E. pulukensis sp. n.

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Figure 11 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figure 11 - Exocelina ascendens (Balke, 1998) A median lobe in ventral view B median lobe in lateral view C paramere in external view D male protarsomeres 4–5 in ventral view.

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Figures 3-6 from: Shaverdo H, Wild M, Sumoked B, Balke M (2017) Six new species of the genus Exocelina Broun, 1886 from Wano Land, New Guinea (Coleoptera, Dytiscidae, Copelatinae). ZooKeys 665: 93-120. https://doi.org/10.3897/zookeys.665.11792

Figures 3-6 - Habitus and coloration 3 Exocelina ascendens (Balke, 1998) 4 E. tomhansi sp. n. 5 E. iratoi sp. n. 6 E. bagus (Balke & Hendrich, 2001).

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Figure 4 from: Yang J-H, Toda MJ, Suwito A, Hashim R, Gao J-J (2017) A new species group in the genus Dichaetophora, with descriptions of six new species from the Oriental region (Diptera, Drosophilidae). ZooKeys 665: 121-146. https://doi.org/10.3897/zookeys.665.11609

Figure 4 - Head (anterior view), postocciput, palpus, and prementum (ventral and lateral view, respectively). A−E Dichaetophora tirlobita sp. n. (#03877) F−J D. heterochroma sp. n. (#03879) K−O D. flatosternata sp. n. (#04172) P−T D. borneoensis sp. n. (#03895) U−Y D. javaensis sp. n. (#03892) Z−D D. sumatraensis sp. n. (#03890). Scale bars: 0.1 mm except for A, F, K, P, U, Z (0.5 mm).

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Figure 3 from: Yang J-H, Toda MJ, Suwito A, Hashim R, Gao J-J (2017) A new species group in the genus Dichaetophora, with descriptions of six new species from the Oriental region (Diptera, Drosophilidae). ZooKeys 665: 121-146. https://doi.org/10.3897/zookeys.665.11609

Figure 3 - Left lateral habitus, head and thorax (dorsal view), wing (left, ventral view), and abdomen (dorsal view). A−D Dichaetophora tirlobita sp. n. (#03877) E−G D. heterochroma sp. n. (#03879) H−J D. flatosternata sp. n. (#04172) K−M D. borneoensis sp. n. (#03895) N−P D. javaensis sp. n. (#03892) Q−S D. sumatraensis sp. n. (#03890). Scale bars: 1.0 mm.

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Figure 1 from: Yang J-H, Toda MJ, Suwito A, Hashim R, Gao J-J (2017) A new species group in the genus Dichaetophora, with descriptions of six new species from the Oriental region (Diptera, Drosophilidae). ZooKeys 665: 121-146. https://doi.org/10.3897/zookeys.665.11609

Figure 1 - Geographical distribution of the Dichaetophora trilobita species group. See the text for the detailed information of the collection sites on the map.

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Figure 2 from: Yang J-H, Toda MJ, Suwito A, Hashim R, Gao J-J (2017) A new species group in the genus Dichaetophora, with descriptions of six new species from the Oriental region (Diptera, Drosophilidae). ZooKeys 665: 121-146. https://doi.org/10.3897/zookeys.665.11609

Figure 2 - Bayeisan trees deduced with COI (left) and COII (right) gene sequences. Label of each operational taxonomic unit (OUT) is given in the format of "voucher number (sex)". Numbers beside nodes are posterior probabilities (when ≥ 0.90). Bold voucher numbers indicate holotype specimens.

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Figure 7 from: Yang J-H, Toda MJ, Suwito A, Hashim R, Gao J-J (2017) A new species group in the genus Dichaetophora, with descriptions of six new species from the Oriental region (Diptera, Drosophilidae). ZooKeys 665: 121-146. https://doi.org/10.3897/zookeys.665.11609

Figure 7 - Dichaetophora flatosternata sp. n. (A−I #04172 J−L paratype #04177). A, B Periphallic organs (posterior and posterolateral view, respectively) C surstyli and cerci D, E tenth sternite (ventral and anterior view, respectively) F−H phallic organs (ventral, ventrolateral and lateral view, respectively) I paramedian setae J, K oviscapt (lateral and ventral view, respectively) L spermatheca (lateral view). Scale bars: 0.1 mm.

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Figure 5 from: Scheffrahn RH, Carrijo TF, Postle AC, Tonini F (2017) Disjunctitermes insularis, a new soldierless termite genus and species (Isoptera, Termitidae, Apicotermitinae) from Guadeloupe and Peru. ZooKeys 665: 71-84. https://doi.org/10.3897/zookeys.665.11599

Figure 5 - Bayesian phylogeny of all described soldierless New World genera using the mitochondrial CO1 barcode gene showing posterior probabilities. Tree rooted on terminal Heterotermes crinitus.

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Figure 6 from: Scheffrahn RH, Carrijo TF, Postle AC, Tonini F (2017) Disjunctitermes insularis, a new soldierless termite genus and species (Isoptera, Termitidae, Apicotermitinae) from Guadeloupe and Peru. ZooKeys 665: 71-84. https://doi.org/10.3897/zookeys.665.11599

Figure 6 - An 85-year stochastic lattice-based model simulation of Disjunctitermes insularis spread from a single founder point locality on Basse-Terre, Guadeloupe.

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Figure 4 from: Scheffrahn RH, Carrijo TF, Postle AC, Tonini F (2017) Disjunctitermes insularis, a new soldierless termite genus and species (Isoptera, Termitidae, Apicotermitinae) from Guadeloupe and Peru. ZooKeys 665: 71-84. https://doi.org/10.3897/zookeys.665.11599

Figure 4 - Type localities (red dots) for D. insularis on Basse-Terre, Guadeloupe. Inset shows the Guadeloupe and Peru localities (red dots) and all other termite collecting localities in the UF database (green dots) where D. insularis was not found.

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Figure 2 from: Scheffrahn RH, Carrijo TF, Postle AC, Tonini F (2017) Disjunctitermes insularis, a new soldierless termite genus and species (Isoptera, Termitidae, Apicotermitinae) from Guadeloupe and Peru. ZooKeys 665: 71-84. https://doi.org/10.3897/zookeys.665.11599

Figure 2 - Dorsal (A), right (B), ventral (C), and left (D) views of a newly molted, unfed Disjunctitermes insularis worker. Abbreviations: C, crop;evs, enteric valve seating; M, mesenteron; MS, mixed segment; P1, P2, P3, P4 and P5 proctodeal segments 1-5, respectively.

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Figure 3 from: Scheffrahn RH, Carrijo TF, Postle AC, Tonini F (2017) Disjunctitermes insularis, a new soldierless termite genus and species (Isoptera, Termitidae, Apicotermitinae) from Guadeloupe and Peru. ZooKeys 665: 71-84. https://doi.org/10.3897/zookeys.665.11599

Figure 3 - Enteric valve morphology of Disjunctitermes insularis worker not fully stretched laterally (A) and fully stretched laterally showing five of six pads (B center pad with small tear). Whole EV mounts of A. banksi (C) and D. insularis (D) with posterior ends at top. Enteric valves of A. pacificus (E, 3 pads shown) , Hydrecotermes arienesho (F), and H. kawaii, whole mount (G).

opencc-by-4.0Apr 2017View details →

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record