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Figure 6 from: Croce A, Nazzaro R (2017) An atlas of orchids distribution in the Campania region (Italy), a citizen science project for the most charming plant family. Italian Botanist 4: 15-32. https://doi.org/10.3897/ib.4.14916
Figure 6 - Distribution of the localities of the observations (punctual type) inside (black circles) and outside (open circles) protected areas (grey areas).
Figure 3 from: Croce A, Nazzaro R (2017) An atlas of orchids distribution in the Campania region (Italy), a citizen science project for the most charming plant family. Italian Botanist 4: 15-32. https://doi.org/10.3897/ib.4.14916
Figure 3 - number of field data (observations) in the 10 km × 10 km cells of the grid on 31 December 2016. Coordinates are expressed in metres, UTM WGS84 33N. Province abbreviations: AV = Avellino, BN = Benevento, CE = Caserta, NA = Naples, SA = Salerno.
Figure 2 from: Croce A, Nazzaro R (2017) An atlas of orchids distribution in the Campania region (Italy), a citizen science project for the most charming plant family. Italian Botanist 4: 15-32. https://doi.org/10.3897/ib.4.14916
Figure 2 - Richness of taxa based on literature data. The number includes hybrids but also species sensu lato. Coordinates are expressed in metres, UTM WGS84 33N. Province abbreviations: AV = Avellino, BN = Benevento, CE = Caserta, NA = Naples, SA = Salerno.
Figure 1 from: Croce A, Nazzaro R (2017) An atlas of orchids distribution in the Campania region (Italy), a citizen science project for the most charming plant family. Italian Botanist 4: 15-32. https://doi.org/10.3897/ib.4.14916
Figure 1 - Number of bibliographic records (citations) in the 10 km × 10 km cells of the grid on 31 December 2016. Coordinates are expressed in metres, UTM WGS84 33N. Province abbreviations: AV = Avellino, BN = Benevento, CE = Caserta, NA = Naples, SA = Salerno.
Figure 7 from: Croce A, Nazzaro R (2017) An atlas of orchids distribution in the Campania region (Italy), a citizen science project for the most charming plant family. Italian Botanist 4: 15-32. https://doi.org/10.3897/ib.4.14916
Figure 7 - Distribution of the localities of the observations (punctual type) inside (black circles) and outside (open circles) a 2 km buffer around the main roads (bands).
FIGURE 1 in Synopsis of Miridae (Hemiptera: Heteroptera) in Atlantic Forest Dominion, Espírito Santo State, Brazil: keys, diagnoses, new species, plant associations, and geographic distribution. Part I: Bryocorinae, Cylapinae and Deraeocorinae.
FIGURE 1. General Miridae morphology (modified from Schwartz & Foottit, 1992, with permission).
Figure 2 in Within-plant distribution and rapid assessment of sugarcane rust mite population on sugarcane canopy
Figure 2 Within-plant distribution of sugarcane rust mite population based on direct counting on three sugarcane cultivars (mean ± SEM). The numbers within brackets are the proportions of mite populations within plants. Means across leaves with the same capital letters are not significantly different and means with the same lower letters on a given leaf position are not significantly different (Tukey, P <0.05).
Fig. 4 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan IX
Fig. 4.ɹArmitarsus watanabei, late-instar larva (A, B) and mature larva (C), photographed by H. Hara. A, B, Chitose, August 24, 2022; C, August 25, 2022 in captivity.
Fig. 7. Male genitalia. A–D in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 7. Male genitalia. A–D, Euura imperfecta, Hokkaido; E–I, E. itoi. A, E–F, Genital capsule: A, ventral view (penis valve removed); E, F, dorsal and ventral views. B–D, G–I, Penis valve, lateral view (left dorsal). All photographed by Hara.
Fig. 3. A–G, L–O in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 3. A–G, L–O, Euura imperfecta: A–B, female, Hokkaido, dorsal and ventral views; C–D, male, Hokkaido, dorsal and ventrolateral views; E–F, female, Honshu, dorsal and ventrolateral views; G, female, Honshu, ventrolateral view; L, egg, Hokkaido; M, semifinal instar larva, lateral view; N–O, final instar larva, lateral and dorsal views; M–O, Hokkaido, Bibai, 1986. H–K, Euura itoi: H–I, female, dorsal and ventrolateral views; J–K, male, dorsal and ventrolateral views. All photographed by Hara.
Fig. 1. A in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VI
Fig. 1. A, Late instar larva of Sterictiphora nipponica, 25. V. 2015, photographed by Ibuki. B, Phylloecus etorofensis, female, photographed by Hara. C, Dead female of Tremex apicalis on trunk of Alnus japonica, 23. V. 2021, photographed by Shinohara. D, Apethymus kunugi, female, photographed by Hara.
Fig. 11 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 11. Tomostethus nigritus: A–C, Female, head in anterior view, whole body in dorsal and ventral views; D, early instar larva, 25. IV. 2021; E, F, final or final feeding instar larva, 1. V. 2021. A–C, Photographed by Hara; D–F, photographed by Ibuki.
Fig. 8 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 8. Euura damnacanti: A, Lance; B, lancet; C, tangium of lancet; D, basal half of lamnium of lancet; E, F, male genitalia in dorsal and ventral views (penis valve removed in F); G, penis valve; H, first instar larvae and egg shells, 17. IV. 2021; I, final and semifinal instar larvae, Nakagawa, 7. V. 2015; J, mature larva, 30. IV. 2021. A–G, Photographed by Hara; H–J, photographed by Ibuki.
Fig. 7 in Taxonomic Notes and New Distribution and Host Plant Records for Sawflies and Woodwasps (Hymenoptera, Symphyta) of Japan VII
Fig. 7. Euura damnacanti: A–C, Female, head in anterior view, whole body in dorsal and ventral views; D–F, male, head in anterior view, whole body in dorsal and ventral views; G, H, mandibles, anterior and posterior views; I, J, right and left mandibles in outer view; K, apex of male abdomen in dorsal view. Photographed by Hara.
Figure 4 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
Figure 4 Metabolism of glucosinolates in Psylliodeschrysocephala and Phyllotretastriolata. Upon herbivory, glucosinolates are usually hydrolysed by the plant enzyme myrosinase to an unstable aglucone, which spontaneously rearranges to a toxic isothiocyanate. In the presence of plant specifier proteins, other hydrolysis products such as thiocyanates and nitriles are formed. Both flea beetle species sequester glucosinolates in their bodies, suggesting that not all glucosinolates are hydrolysed in feeding-damaged plant tissue. Sequestered glucosinolates may be activated for defensive purposes by an insect myrosinase in Ph.striolata, but not in Ps.chrysocephala. In addition, Ps.chrysocephala partially detoxifies glucosinolates by desulfation, whereas no glucosinolate sulfatase activity was found in Ph.striolata. According to a quantitative feeding study performed with Ps.chrysocephala, most ingested glucosinolates are activated, and isothiocyanates are detoxified by conjugation to glutathione. The isothiocyanate-glutathione conjugate is metabolized via the mercapturic acid pathway to several cyclic metabolites in Ps.chrysocephala adults (Beran et al. 2018). Examples of three structurally different glucosinolate side-chains are shown in the box. Beetle photos: Anna Schroll.
Supplementary material 1 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
: Data type: (Species, host plants, diet breadth, geographic distribution)
Figure 3 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
Figure 3 Distribution of 242 Phyllotreta species in the different zoogeographical regions (A), and host plant associations of all species (As) and endemic species (Es) for each zoogeographical region (B). For detailed information, refer to Suppl. material 3.
Figure 2 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
Figure 2 Distribution of 207 Psylliodes species in the different zoogeographical regions (A), and host plant associations of all species (As) and endemic species (Es) for each zoogeographical region (B). For detailed information, refer to Suppl. material 1.
Figure 1 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
Figure 1 Host plant associations of the genera Psylliodes (A) and Phyllotreta (B). The host plants of 107 Psylliodes species and 117 Phyllotreta species have been reported in the literature. The numbers of species which feed on plants in one plant family (monophagous and oligophagous), and the number of polyphagous species are given as percentages. 18% of the Phyllotreta species feed on more than one family in the order Brassicales (Brassic., Brassicaceae; Cappar., Capparaceae; Cleom., Cleomaceae; Resed., Resedaceae; Tropaeol., Tropaeolaceae). For detailed information, refer to Suppl. material 1 (Psylliodes) and 3 (Phyllotreta).
Supplementary material 3 from: Gikonyo MW, Biondi M, Beran F (2019) Adaptation of flea beetles to Brassicaceae: host plant associations and geographic distribution of Psylliodes Latreille and Phyllotreta Chevrolat (Coleoptera, Chrysomelidae). In: Schmitt M, Chaboo CS, Biondi M (Eds) Research on Chrysomelidae 8. ZooKeys 856: 51-73. https://doi.org/10.3897/zookeys.856.33724
: Data type: (Species, host plants, diet breadth, geographic distribution)
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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.
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.