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FIGURE 2 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 2 Phylogenetic trees based on EF1α sequence data (a) maximum likelihood (IQ-TREE) and (b) Bayesian (Mr. Bayes). Branch labels indicate the ultrafast bootstrap and SH-aLRT values for the maximum likelihood tree and posterior probabilities for the Bayesian tree. Planococcus ficus was used as the outgroup for both trees. The host plant family is followed by the country of collection. See Table S1 for further details on host plant species and specimen collection codes for Hypogeococcus.
FIGURE 5 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 5 (a) Mean (± SE) pre-oviposition period (days) of the first virgin females, the second virgin, and second mated female generations (H = 19.491, p <0.0001), means labelled with similar letters are not significantly different (Dunn's test, p <0.05); (b) realised fecundity of the first virgin females, the second virgin and second mated female generations (H = 1.2429, p = 0.5372).
FIGURE 1 in Confirming the identity of the Hypogeococcus species (Hemiptera: Pseudococcidae) associated with Harrisia martinii (Labour.) Britton (Cactaceae) in Australia: implications for biological control
FIGURE 1 The different morphological features of the Australian Hypogeococcus: Panels (a) and (b) show that the abdominal region has three circuli (1–3); panel (c) shows that the head region has two antennae (4), numerous slender capitate setae (5), and numerous multilocular pores (6); panel (d) shows the presence of numerous slender capitate setae (5) and numerous multilocular pores (6) in the abdominal region; panels (e) and (f) show that the posterior ventral area possess numerous multilocular pores (6) and numerous conical setae (7); panels (g) and (h) show the foreleg (8) with the curvature attachment point, mid-leg (9) and hindleg (10), both with attachment points ending in a bifurcation. These characters are consistent with Hypogeococcus pungens s.s.
Figure 3 SEM micrographs ofParacarophenax cerambycinus n in First record of Acarophenacidae (Acari Heterostigmata) from Mexico, with description of a new species of Paracarophenax associated with Cerambycidae (Insecta: Coleoptera)
Figure 3 SEM micrographs ofParacarophenax cerambycinus n. sp., female: A – anterior part of prodorsum (external vertical setae = v2, pits of internal scapular setae = sc1, external scapular setae = sc2, and dorsal setaec1 andc2); B – general ventral view; C – legs I (solenidiaφ and ω; the arrow indicate postpalpal setae = pp); D – Legs II (solenidiaω andφ, spiniform setae pl″ andpv″ on tarsus, spiniform seta v″ on tibia, and spiniform seta v′ on genu); E – Leg III (setav′ on femur, seta tc″ and spiniform seta pv″ on tarsus); F – anterior ventral view (coxal setae 4a, 4b, 4c and pseudanal setae =ps).
Figures 6-10 in A new species of Tanaostigmodes Ashmead, 1896 (Hymenoptera: Tanaostigmatidae) from Brazil associated with Machaerium acutifolium Voguel, 1837 (Fabaceae)
Figures 6-10. Tanaostigmodes anamariae Perioto and Lara, sp. nov., female. 6. Mesosoma, dorsal. 7. Propodeum, dorsal. 8. Mesosoma, lateral. 9. Metafemur, lateral. 10. Metasoma, lateral. /Tanaostigmodes anamariae Perioto y Lara, sp. nov., hembra. 6. Mesosoma, dorsal. 7. Propodeo, dorsal. 8. Mesosoma, lateral. 9. Metafémur, lateral. 10. Metasoma, lateral.
Figures 1-5 in A new species of Tanaostigmodes Ashmead, 1896 (Hymenoptera: Tanaostigmatidae) from Brazil associated with Machaerium acutifolium Voguel, 1837 (Fabaceae)
Figures 1-5. Tanaostigmodes anamariae Perioto and Lara, sp. nov., female. 1. Habitus, lateral. 2. Head, frontal. 3. Head, dorsal. 4. Head, lateral. 5. Antenna, frontal. / Tanaostigmodes anamariae Perioto y Lara, sp. nov., hembra. 1. Hábitos, lateral. 2. Cabeza, frontal. 3. Cabeza, dorsal. 4. Cabeza, lateral. 5. Antena, frontal.
Figures 13-15 in A new species of Rileya Ashmead (Hymenoptera: Eurytomidae) from Brazil associated with Zalepidota Rübsaamen (Diptera: Cecidomyiidae)
Figures 13-15. Rileya priscillae Perioto and Lara sp. nov., male. 13. Habitus, latero dorsal. 14. Habitus, dorsal. 15. Petiole, dorsal.
Figures 7-12 in A new species of Rileya Ashmead (Hymenoptera: Eurytomidae) from Brazil associated with Zalepidota Rübsaamen (Diptera: Cecidomyiidae)
Figures 7-12. Rileya priscillae Perioto and Lara sp. nov., female. 7. Mesosoma, lateral. 8. Mesosoma, dorsal. 9. Propodeum, dorsal. 10. Fore wing. 11. Metasoma, lateral. 12. Metasoma, dorsal.
Figures 1-6 in A new species of Rileya Ashmead (Hymenoptera: Eurytomidae) from Brazil associated with Zalepidota Rübsaamen (Diptera: Cecidomyiidae)
Figures 1-6. Rileya priscillae Perioto and Lara sp. nov., female. 1. Habitus, lateral. 2. Habitus, latero dorsal. 3. Head, frontal. 4. Clypeus and mandibles. 5. Head, lateral. 6. Antenna.
Data for: Long-term body size change in multiple landbird species, long-term change in temperature and precipitation as well as associations between temperature, precipitation, and morphological change in multiple landbird species, 2004 – 2019, 2021 - 2022.
<p>Six data sets used to look for long-term change in precipitation and temperature, body size change and possible environmental drivers of morphological change in birds captured during spring or fall migration in and around Lackawanna State Park, northeastern Pennsylvania, USA.</p> <p>The file labeled daily_temp_precip.csv contains daily precipitation and average daily temperature data from the Scranton/Wilkes Barre Airport (Avoca, Pennsylvania, USA) and the file called daily_temp_precip_1400 contains daily precipitation and daily temperature data from weather stations within 1,400 km of our study site location (41.6<sup>o</sup>N, 75.7<sup>o</sup>W), bounded by 80<sup>o</sup> W and 70<sup>o</sup>W longitude.</p> <p>The file called band_data_final.csv contains data collected from the first capture of individuals of multiple species during spring or fall migration, the file called all_hy_env_morph.csv contains temperature and precipitation anomaly data from Scranton/Wilkes Barre Airport (Avoca, Pennsylvania, USA), as well as morphological data from the first capture of all fall migrating young of the year.</p> <p>The file called all_hy_env_morph_1400.csv contains temperature and precipitation anomaly data from weather stations within 1,400 km of our study site location (41.6<sup>o</sup>N, 75.7<sup>o</sup>W), bounded by 80<sup>o</sup> W and 70<sup>o</sup>W longitude as well as morphological data from the first capture of all fall migrating young of the year while the file called local_hy_env_morph.csv contains temperature and precipitation anomaly data as well as first capture of local young of the year.</p>
Fig. 3. Pennatulicola piscatorius n in A New Species of Pennatulicola Humes and Stock (Copepoda: Cyclopoida: Rhynchomolgidae) Associated with a Pennatulacean from Tokyo Bay, Japan
Fig. 3. Pennatulicola piscatorius n. sp. Female, paratype: A, leg 4 (arrowhead indicates inner terminal process that is usually absent); B, exopod of leg 5; C, genital aperture. Male, paratype: D, habitus, dorsal; E, urosome, ventral; F, right caudal ramus, ventral; G, maxilliped; H, exopod of leg 5. Scale bars: A–C, E, H, 0.05 mm; D, 0.1 mm; F, G, 0.02 mm.
Fig. 2. Pennatulicola piscatorius n in A New Species of Pennatulicola Humes and Stock (Copepoda: Cyclopoida: Rhynchomolgidae) Associated with a Pennatulacean from Tokyo Bay, Japan
Fig. 2. Pennatulicola piscatorius n. sp., female, paratype. A, mandible; B, paragnath; C, maxillule; D, maxilla (Roman numerals I–III indicate setae I–III); E, maxilliped; F, leg 1; G, leg 2; H, leg 3. Scale bars: A–E, 0.02 mm; F–H, 0.05 mm.
Fig. 4 in A New Species of Podocerus (Crustacea: Amphipoda: Podoceridae) Associated with the Whale Shark Rhincodon typus
Fig. 4. Podocerus jinbe sp. nov., holotype male 6.0 mm, NSMT-Cr 26048. A, pereopod 5, medial view; B, pereopod 6, medial view; C, pereopod 7, medial view; D, basis and ischium of pereopod 7, medial view; E, pleopod 1, medial view; F, retinacula (coupling hooks) of peduncle of pleopod 1, medial view; G, uropod 1, dorsal view; H, uropod 2, dorsal view; I, uropod 3, dorsal view; J, telson, dorsal view.
Fig. 3 in A New Species of Podocerus (Crustacea: Amphipoda: Podoceridae) Associated with the Whale Shark Rhincodon typus
Fig. 3. Podocerus jinbe sp. nov., holotype male 6.0 mm, NSMT-Cr 26048. A, basis to dactylus of gnathopod 1 (some setae omitted; dactylus is strongly curved due to mounting angle), medial view; B, basis to dactylus of gnathopod 2 (some setae omitted), medial view; C, palmar margin of gnathopod 2 propodus, medial view; D, pereopod 3, medial view; E, basis and ischium of pereopod 3, medial view; F, pereopod 4.
Fig. 2 in Associations Between Habitat Quality And Body Size In The Carpathian-Podolian Land Snail Vestia Turgida: Species Distribution Model Selection And Assessment Of Performance
Fig. 2. Linear relationship (solid line) and 95 % confidence interval (gray area) between habitat quality predicted by the BART model (x-axis) and shell height (H in millimeters, y-axis), derived from the linear mixed model.
Fig. 4. Partial dependence plot for topographic Fig. 5 in Associations Between Habitat Quality And Body Size In The Carpathian-Podolian Land Snail Vestia Turgida: Species Distribution Model Selection And Assessment Of Performance
Fig. 4. Partial dependence plot for topographic Fig. 5. Partial dependence plot for terrain roughness wetness index (TWI). index (tri).
Fig. 6 in Associations Between Habitat Quality And Body Size In The Carpathian-Podolian Land Snail Vestia Turgida: Species Distribution Model Selection And Assessment Of Performance
Fig. 6. Partial dependence plot for pH water (phh2o). Fig. 7. Partial dependence plot for silt content (SLT).
Fig. 5 in A new species of Plagiognathus (Heteroptera: Miridae) associated with the locally endemic Phlomis leucophracta (Lamiales: Lamiaceae) from Karaman, Turkey
Fig. 5. Distribution of Plagiognathus spp. Star: P. ozgurkocaki sp. nov.; circle: P. marivanensis Linnavuori, 2010; square: P. bipunctatus albicans (Reuter, 1901). Grey color indicates previous literature records, red color indicates new records presented in this paper.
Fig. 4. Plagiognathus spp. A. P in A new species of Plagiognathus (Heteroptera: Miridae) associated with the locally endemic Phlomis leucophracta (Lamiales: Lamiaceae) from Karaman, Turkey
Fig. 4. Plagiognathus spp. A. P. ozgurkocaki sp. nov., ♂, paratype (LEMT). B. P. marivanensis Linnavuori, 2010, ♂ (BCIT), Karaman. C. P. bipunctatus albicans (Reuter, 1901), ♂ (BCIT), Karaman. D. P. bipunctatus bipunctatus, ♂ (BCIT), İzmir. Scale bar = 1 mm.
Fig. 3 in A new species of Plagiognathus (Heteroptera: Miridae) associated with the locally endemic Phlomis leucophracta (Lamiales: Lamiaceae) from Karaman, Turkey
Fig. 3. Plagiognathus ozgurkocaki sp. nov., ♂, paratype (LEMT). A–C. Vesica from different perspectives. D–G. Left paramere from different perspectives. H. Right paramere. Scale bar = 0.1 mm.
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.