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Figure 5 from: Gul MA, Soliman AM, Gadallah NS, Al Dhafer HM, Delvare G (2020) The genus Phasgonophora Westwood, 1832 (Hymenoptera, Chalcididae) in Saudi Arabia: re-evaluation of its limits and description of three new species. Journal of Hymenoptera Research 76: 1-38. https://doi.org/10.3897/jhr.76.38340
Figure 5 A−DPhasgonophora baiocchii Soliman & Gul, sp. nov. A, B female (holotype): A metasoma (dorsal view) B syntergum (lateral view) C, D male (paratype): C head (dorsal view) D head (frontal view).
Figure 12 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 12 Ooencyrtus telenomicida female A habitus in lateral view (from Nikolaevskaya oblast', Ukraine) B habitus in dorsolateral view (from Krasnodarskiy kray, Russia) C antenna (from Stavropol'skiy kray, Russia).
Figure 1 from: Gul MA, Soliman AM, Gadallah NS, Al Dhafer HM, Delvare G (2020) The genus Phasgonophora Westwood, 1832 (Hymenoptera, Chalcididae) in Saudi Arabia: re-evaluation of its limits and description of three new species. Journal of Hymenoptera Research 76: 1-38. https://doi.org/10.3897/jhr.76.38340
Figure 1 Strict consensus tree of the Phasgonophorini achieved from phylogenetic inference using parsimony. Bootstrap support below nodes. A, B, C denote the supported clades; * denote specimens used for the phylogenetic study using the Ultra Conserved Elements (Cruaud et al. 2020); 1, type species of Phasgonophora Westwood; 2, type species of Trigonura Sichel; 3, type species of Chalcidellia Girault.
Figure 16 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 16 Multivariate ratio analysis for Ooencyrtus mirus sp. nov. and O. telenomicidaA scatterplot of isosize against first shape PC B shape PCA, scatterplot of first against second shape PC C PCA ratio spectrum for PC1, bars represent 68% confidence intervals D allometry ratio spectrum; bars represent 68% confidence intervals.
Figure 11 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 11 Ooencyrtus telenomicida female (neotype) A slide B antenna C head in frontal view D axillae, scutellum and propodeum E fore wing F mesotibia and mesotarsus.
Figure 15 from: Triapitsyn SV, Andreason SA, Power N, Ganjisaffar F, Fusu L, Dominguez C, Perring TM (2020) Two new species of Ooencyrtus (Hymenoptera, Encyrtidae), egg parasitoids of the bagrada bug Bagrada hilaris (Hemiptera, Pentatomidae), with taxonomic notes on Ooencyrtus telenomicida. Journal of Hymenoptera Research 76: 57-98. https://doi.org/10.3897/jhr.76.48004
Figure 15 Ooencyrtus telenomicida male (from Stavropol'skiy kray, Russia) A habitus in lateral view B antenna C fore wing.
Fig 1 from: Branson DH (2020) Grasshopper populations respond similarly to multiple moderate intensity livestock grazing treatments. Journal of Orthoptera Research 29(1): 67-69. https://doi.org/10.3897/jor.29.46966
Fig 1 Average grasshopper density (# per m2, mean ± SE) from 1997 through 2000 for each treatment. (3RG: three-pasture, twice-over rotational grazing; HILF: high-intensity low-frequency grazing; SD: short-duration grazing; SL: season-long continuous grazing; and WP: three-pasture winter rotation).
Fig 1 from: Branson DH (2020) Influence of cold temperature and exposure time on egg overwintering survival in the white-whiskered grasshopper (Orthoptera: Acrididae). Journal of Orthoptera Research 29(1): 63-65. https://doi.org/10.3897/jor.29.46967
Fig 1 Proportional survival (mean ± SE) of white-whiskered grasshopper eggs by temperature (-20°C, -25°C, and 4°C control) and exposure time (48, 120, and 240 hours) treatments (8 replicates with 16 egg pods per replicate). No eggs survived in any exposure time treatment at -30°C and -35°C.
Fig 5 from: Gardiner T, Fargeaud K (2020) Microhabitats of planted sea wall strips used by pollinators and Orthoptera. Journal of Orthoptera Research 29(1): 77-82. https://doi.org/10.3897/jor.29.34452
Fig 5 A teasel (Dipsacus fullonum) flowerhead visited by the tree bumblebee (Bombus hypnorum) in 2019. Photo credit: T. Gardiner.
Fig 2 from: Wilson JD, Anner SC, Murphy SM, Tinghitella RM (2020) Consequences of advanced maternal age on reproductive investment of male offspring. Journal of Orthoptera Research 29(1): 71-76. https://doi.org/10.3897/jor.29.39228
Fig 2 Reproductive investment of male offspring by treatment. For all male offspring from both maternal age treatments: A. Testes mass; B. Spermatophore mold mass. There were no significant differences between treatments for either measure. Bars represent least square means ± SE.
Fig 3 from: Gardiner T, Fargeaud K (2020) Microhabitats of planted sea wall strips used by pollinators and Orthoptera. Journal of Orthoptera Research 29(1): 77-82. https://doi.org/10.3897/jor.29.34452
Fig 3 Pollinator strip with a short sward ideal for Orthoptera nymphs being planted with plugs by the second author in April 2018. Photo credit: T. Gardiner.
Fig 4 from: Gardiner T, Fargeaud K (2020) Microhabitats of planted sea wall strips used by pollinators and Orthoptera. Journal of Orthoptera Research 29(1): 77-82. https://doi.org/10.3897/jor.29.34452
Fig 4 Roesel's bush-cricket (Roeseliana roeselii) nymph on a planted teasel (Dipsacus fullonum) leaf in 2019. Photo credit: T. Gardiner.
Fig 2 from: Gardiner T, Fargeaud K (2020) Microhabitats of planted sea wall strips used by pollinators and Orthoptera. Journal of Orthoptera Research 29(1): 77-82. https://doi.org/10.3897/jor.29.34452
Fig 2 Principal components for the adult (grasshopper and R. roeselii), sward height/variability, and rabbit grazing data. PC1 represents sward height, PC2 represents R. roeselii adult density.
Fig 1 from: Gardiner T, Fargeaud K (2020) Microhabitats of planted sea wall strips used by pollinators and Orthoptera. Journal of Orthoptera Research 29(1): 77-82. https://doi.org/10.3897/jor.29.34452
Fig 1 Principal components for the nymph (grasshopper and R. roeselii), sward height/variability, and rabbit grazing data. PC1 represents sward height, PC2 represents R. roeselii nymph density.
Fig 1 from: Wilson JD, Anner SC, Murphy SM, Tinghitella RM (2020) Consequences of advanced maternal age on reproductive investment of male offspring. Journal of Orthoptera Research 29(1): 71-76. https://doi.org/10.3897/jor.29.39228
Fig 1 A diagram of our experimental mating design. We mated females at either a young age (7 days after eclosion to adulthood) or an old age (25 days after eclosion to adulthood) for two subsequent generations, then measured three proxies of reproductive investment in males of the F3 generation. The F3 families from the Old treatment were the offspring of 8 founding females and the F3 families from the Young treatment were the offspring of 7 founding females.
Fig 4 from: Conle OV, Hennemann FH, Valero P (2020) Studies on neotropical Phasmatodea XXII: Two new species of Taraxippus (Phasmatodea: Cladomorphinae: Hesperophasmatini) and the first record of the genus from Central America. Journal of Orthoptera Research 29(1): 101-114. https://doi.org/10.3897/jor.29.51328
Fig 4 Comparison of eggs: Taraxippus samaraesp. nov.: a. Dorsal; b. Lateral; c. Frontal. Taraxippus perezgelabertisp. nov.: d. Dorsal; e. Lateral; f. Frontal.
Fig 6 from: Conle OV, Hennemann FH, Valero P (2020) Studies on neotropical Phasmatodea XXII: Two new species of Taraxippus (Phasmatodea: Cladomorphinae: Hesperophasmatini) and the first record of the genus from Central America. Journal of Orthoptera Research 29(1): 101-114. https://doi.org/10.3897/jor.29.51328
Fig 6 Male (PT) of Taraxippus samaraesp. nov. Habitus: a. Dorsal; b. Lateral; c. Ventral. Head and thorax: d. Dorsal; e. Lateral; f. Ventral. End of the abdomen: g. Dorsal; h. Lateral; i. Ventral.
Fig 3 from: Conle OV, Hennemann FH, Valero P (2020) Studies on neotropical Phasmatodea XXII: Two new species of Taraxippus (Phasmatodea: Cladomorphinae: Hesperophasmatini) and the first record of the genus from Central America. Journal of Orthoptera Research 29(1): 101-114. https://doi.org/10.3897/jor.29.51328
Fig 3 Comparison of females of Taraxippus. Note: (d–i) not in scale. Habitus in lateral view: a.Taraxippus paliurus Moxey, 1971; b.Taraxippus perezgelabertisp. nov.; c.Taraxippus samaraesp. nov. Head, pro-, and mesothorax in lateral view: d.Taraxippus paliurus Moxey, 1971; e.Taraxippus perezgelabertisp. nov.; f.Taraxippus samaraesp. nov. End of the abdomen in ventral view: g.Taraxippus paliurus Moxey, 1971; h.Taraxippus perezgelabertisp. nov.; i.Taraxippus samaraesp. nov.
Figs 18-20 from: Collins N, Schneider KR (2020) Oecanthus salvii sp. nov. (Orthoptera: Gryllidae: Oecanthinae): A new tree cricket species from Modoc County in northeast California. Journal of Orthoptera Research 29(1): 91-99. https://doi.org/10.3897/jor.29.50400
Figs 18-20 Sage tree cricket. 18. Adult male; 19. Adult female; 20. Raised tegmina of male preparing to sing.
Fig 29 from: Collins N, Schneider KR (2020) Oecanthus salvii sp. nov. (Orthoptera: Gryllidae: Oecanthinae): A new tree cricket species from Modoc County in northeast California. Journal of Orthoptera Research 29(1): 91-99. https://doi.org/10.3897/jor.29.50400
Fig 29 Seventeen-second waveform of two male sage tree crickets at 17.3°C. Areas of interest shown in Fig. 30a–e.
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.