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Figures 20–24 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 20–24. Male genitalia (lateral projection) of Triphysa: 20 – T. phryne, Volgograd reg.; 21 – T. phryne kasikoporana, holotype; 22 – T. striatula, cotype; 23 – T. striatula urumtshiensis, holotype; 24 – T. issykkulica, holotype.
Figures 16–17 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 16–17. Habitats of Triphysa: 16 – T. nervosa biocellata, Central Mongolia, near Ulan-Baator (photo by A. Vaganov); 17 – T. nervosa biocellata (photo by O. Kosterin).
Figures 14–15 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 14–15. Habitats of Triphysa: 14 – T. nervosa kobdoensis (type locality, photo by D. Ryzhkov); 15 – T. nervosa mongolaltaica (type locality, photo by A. Kechaikin).
Figures 10−11 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 10−11. Habitats of Triphysa, and female of T. nervosa glacialis in nature: 10 – T. nervosa glacialis, SE Altai, Ukok plateau, near Bertek, h–2400 m (photo by R. Yakovlev); 11 − T. nervosa glacialis – SE Altai, near Chagan-Uzun vill., h–2200 m (photo by A. Volynkin).
Figure 5 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 5. Triphysa sp., imago: a – T. nervosa brinikhi, holotype (ISEAN), upperside, b – underside; c – T. nervosa brinikhi, paratype, female (ISEAN), upperside, d – underside; e – T. nervosa tscherskii, male, lectotype (ZISP), upperside, f – underside; g – T. nervosa tscherskii, female, Yakutsk, 29.05.1985, V. Dubatolov leg. (ISEAN), upperside, h – underside; i – T. nervosa nervosa, male, Russia, Chita reg., near Naminga vill., 4.07.2002, leg. V. Ivonin (RYB), upperside, j – underside; k – T. nervosa nervosa, male, Amur reg., Blagoveshensk, 17.05.1995, leg. A. Streltsov (RYB), upperside, l – underside; m – T. nervosa nervosa, female, Amur reg., Blagoveshensk, 17.05.1995, leg. A. Streltsov (RYB), upperside, n – underside; o – T. nervosa nervosa, male, N. Ural, Malaya Sos'va Reserve, 14.06.1989 (ISEAN), upperside, p – underside.
Figure 4 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 4. Triphysa sp., imago: a – T. nervosa mongolaltaica, holotype (ZISP), upperside, b – underside; c – T. nervosa mongolaltaica, paratype, male (RYB), upperside, d – underside; e – T. nervosa mongolaltaica, paratype, female (RYB), upperside, f – underside; g – T. nervosa mongolaltaica, paratype, female (RYB), upperside, h – underside; i – T. nervosa biocellata, lectotype (MHUB), upperside, j – underside; k – T. nervosa biocellata, paralectotype, female (MHUB), upperside, l – underside; m – T. nervosa biocellata (lectotype T. phryne kintschouensis) (MHUB), upperside, n – underside; o – T. nervosa biocellata (paralectotype, female T. phryne kintschouensis) (MHUB), upperside, p – underside; q – T. nervosa biocellata, male, Russia, Buryatia Rep., Gusinoe Ozero vill., steppe rivulet valley, 25.05.2002, leg. Shevnin (RYB), upperside, r – underside; s – T. nervosa biocellata, female, Russia, Buryatia Rep., Gusinoe Ozero vill., steppe rivulet valley, 25.05.2002, leg. Shevnin (RYB), upperside, t – underside; u – T. nervosa gartoki, lectotype (MHUB), upperside, v – underside.
Figure 3 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 3. Triphysa sp., imago: a – T. nervosa tuvinica, holotype (ISEAN), upperside, b – underside; c – T. nervosa tuvinica, paratype, male (RYB), upperside, d – underside; e – T. nervosa tuvinica, paratype, female (RYB), upperside, f – underside; g – T. nervosa tuvinica, paratype, female (RYB), upperside, h – underside; i – T. nervosa arturi, holotype (ISEAN), upperside, j – underside; k – T. nervosa arturi, paratype, male (RYB), upperside, l – underside; m – T. nervosa arturi, paratype, female (RYB), upperside, n – underside; o – T. nervosa arturi, paratype, female (ISEAN), upperside, p – underside; q – T. nervosa kobdoensis, holotype (ZISP), upperside, r – underside; s – T. nervosa kobdoensis, paratype, male (RYB), upperside, t – underside; u – T. nervosa kobdoensis, paratype, female (RYB), upperside, v – underside.
Figure 6 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 6. Distribution map of Triphysa species: a (above) – general map; b (below) – northern-eastern part of area of T. nervosa nervosa.
Figures 12−13 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 12−13. Habitats of Triphysa: 12 – T. nervosa tuvinica (type locality, photo by P. Kosachev); 13 – T. nervosa arturi (type locality, photo by P. Kosachev).
Figures 8–9 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figures 8–9. Habitats of Triphysa: 8 – T. phryne phryne, Russia, Volgograd reg. (photo by A. Samus'); 9 – T. issykkulica, SE Kazakhstan, Alma-Ata reg. (photo by S. Korb).
Figure 2 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 2. Triphysa sp., imago: a – T. striatula urumtshiensis, holotype (ZISP), upperside, b – underside; c – T. issykkulica sp. n., holotype (ZISP), upperside, d – underside; e – T. issykkulica sp. n., paratype, male, Kirgiziya, IssykKul' reg., Sarydzhaz, S slope of Inylchek Mts., Tashkoro, 3100 m, 4.07.1986, I. Pljustch (ISEAN), upperside, f – underside; g – T. issykkulica sp. n., paratype, female, 03.05.2009, Kazakhstan, W of Almaty, 800 m., leg. P.Egorov (SKNN), upperside, h – underside; i – T. issykkulica pljushchi ssp. n., holotype (ZMKU), upperside, j – underside; k – T. issykkulica pljushchi ssp. n., paratype (ZMKU), upperside, l – underside; m – T. nervosa glacialis, lectotype (MHUB), upperside, n – underside; o – T. nervosa glacialis, paralectotype, female (MHUB), upperside, p – underside; q – T. nervosa glacialis, male, SE Altai, Ukok plateau, Mai-pak, H – 2300 m, 29.06-3.07.1997, R. Yakovlev (RYB), upperside, r – underside; s – T. nervosa glacialis, female, SE Altai, Ukok plateau, Mai-pak, H – 2300 m, 29.06- 3.07.1997, R. Yakovlev (RYB), upperside, t – underside; u – T. nervosa glacialis, male, W. Buryariya, Mondy, 21.06.2002 (RYB), upperside, v – underside; w – T. nervosa glacialis, female, W. Buryariya, Mondy, 21.06.2002 (RYB), upperside, x – underside.
Figure 1 in A review of the genus Triphysa Zeller, 1858 (Lepidoptera, Satyridae)
Figure 1. Triphysa sp., imago: a – neotype of Triphysa dohrnii Zeller, 1858 (ZISP), upperside, b – underside; c – T. phryne, male, Crimea, Dzhankoj distr., near Yasnopolyanskoe vill., 25.04.2009, leg. Savchuk V. (RYB), upperside, d – underside; e – T. phryne, Russia, S. Ural, Kuvandyk, 15.05.1996, leg. V. Barkhatov (RYB), upperside, f – underside; g – T. phryne, female, same locality, 1-10.06.1995 (RYB), upperside, h – underside; i – T. phryne, male, Russia, Altai Krai, Ugly distr., Lyapunovo, 9.05.2003, leg. D. Ryzhkov (RYB), upperside, j – underside; k – T. phryne, female, E. Kazakhstan, Manrak Mts., near Zhanaul vill., 1100 m, 47º14' N, 84º35' E, 3.06.2003, leg. R. Yakovlev (RYB) upperside, l – underside; m – T. phryne kasikoporana ssp. n., holotype (ZISP), upperside, n – underside; o – T. phryne kasikoporana ssp. n., paratype, female (ZSSM), upperside, p – underside; q – T. striatula, cotype, male (MHUB), upperside, r – underside; s – T. striatula, cotype, female (MHUB), upperside, t – underside; u – T. striatula, cotype, male (MHUB), upperside, v – underside; w – T. striatula, cotype, male (ZISP), upperside, x – underside.
Fig. 7 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 7. Distribution of the records of parasitic arthropods in relation to host species and their distribution in the sub-regions of the Antarctic region. Legend: AAP = Antarctic Peninsula (including South Shetland Islands and Palmer Archipelago), AWS = Antarctica Weddell Sea sector, AAT = Antarctica Atlantic Ocean sector (including Bouvet Island), AIW = Antarctica Indian Ocean West sector, AIE = Antarctica Indian Ocean East sector, ARS = Antarctica Ross Sea sector (including Scott and Balleny Islands), APW = Antarctica Pacific Ocean West sector, APE = Antarctica Pacific Ocean East sector (including Peter I Island), SOI = South Orkney Island, SGI = South Georgia Island, SSI = South Sandwich Islands, PEI = Prince Edward Islands, CRI = Crozet Islands, KEI = Kerguelen Islands, HMI = Heard and McDonald Islands.
Fig. 6 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 6. Distribution of host species and host-parasite-location records in the Antarctic region, excluding stragglers and contaminants. Legend: (A) avian hosts, (B) pinniped hosts, (C) chewing lice, (D) sucking lice, (E) fleas, (F) ticks, (G) nasal mites, (H) feather mites.
Fig. 4 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 4. Genera of fleas (Ceratophyllidae – 1, Pygiopsyllidae – 2, Rhopalopsyllidae – 3), pentastomes (Reighardiidae – 4), hard ticks (Ixodidae – 5), parasitic mites (Laelapidae – 6, Halarachnidae – 7, Rhinonyssidae – 8) and feather mites (Alloptidae – 9, Avenzoariidae – 10, Freyanidae – 11, Xolalgidae – 12) recorded infesting Antarctic birds and mammals.
Fig. 5 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 5. Network representation and mean and standard deviation of degrees and betweenness centrality of the host-parasite associations by host families (A) and parasite families (B), excluding stragglers and contaminants. Degrees (number of connections of a given node) may be interpreted as a measure of the host breadth of a given parasite species or the parasite diversity of a given host species; node size is drawn proportional to the number of degrees. Betweenness centrality (proportion of shortest paths between nodes that pass through a given node) may be interpreted as a measure of the potential influence a species has over the spread of vectorborne pathogens through the network.
Fig. 3 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 3. Genera of sucking lice (Echinophthiriidae – 1) and chewing lice (Menoponidae – 2, Philopteridae – 3) recorded infesting Antarctic birds and mammals.
Fig. 2 in Arthropod parasites of Antarctic and Subantarctic birds and pinnipeds: A review of host-parasite associations
Fig. 2. Host-parasite associations at the family level between Antarctic birds and mammals and arthropods, excluding stragglers and contaminants. Phylogenetic trees are not drawn to scale (adapted from Dabert and Mironov, 1999; Whiting, 2002; Dowling and O'Connor, 2010; Zhang, 2011; Prum et al., 2015).
Fig. 1 in Review on parasites of wild and captive giant pandas (Ailuropoda melanoleuca): Diversity, disease and conservation impact
Fig. 1. Distribution of wild giant pandas in six mountain regions (Qinling, Minshan, Qionglai, Liangshan, Daxiangling and Xiaoxiangling) in three Provinces (Gansu, Shaanxi, and Sichuan) of China. Adapted from Wang et al. (2018).
Fig. 3 in Cryptosporidium cf. avium in an inland-bearded dragon (Pogona vitticeps) - A case report and review of the literature
Fig. 3. Relationship of the novel Cryptosporidium cf. avium taxa (in bold) from the faeces of the inland-bearded dragon with representative Cryptosporidium sequences, established based on a phylogenetic analysis of sequence data from a portion of the actin gene employing the neighbour-joining distance method. Branch supports are represented by neighbour-joining bootstrap percentages. C. andersoni was used as an outgroup.
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)
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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.
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.