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Figures 13–15. Edessa leucogramma biology and natural history. 13 in First report of the stinkbug Edessa leucogramma (Perty) (Hemiptera: Heteroptera: Pentatomidae: Edessinae) attacking Handroanthus chrysanthus (Jacq.) S.O. Grose (Bignoniaceae), with descriptions of the adult and immatures and notes on associated fungi and protozoa
Figures 13–15. Edessa leucogramma biology and natural history. 13) Reproductive system of the female of Edessa leucogramma. a) Photograph of female's reproductive system. b) Illustration of the female's reproductive system: (Be.) spermatheca; (CaG.) genital? chamber; (Espa.) spermathecal bulb; (Fl.) lateral filament; (Gop.) gonopore; (Lg.) ovarian ligament; (Oc.) common oviduct (Ola.) lateral oviduct; (Ov.) ovarium; (Ova.) ovarioles. c) Photograph of the spermatheca and associated parts. 14) Damage produced by the feeding of E. leucogramma on H. chrysanthus. 15) Dissection of the salivary glands of E. leucogramma (Organ where the live protozoa were found).
Figures 10–12 in First report of the stinkbug Edessa leucogramma (Perty) (Hemiptera: Heteroptera: Pentatomidae: Edessinae) attacking Handroanthus chrysanthus (Jacq.) S.O. Grose (Bignoniaceae), with descriptions of the adult and immatures and notes on associated fungi and protozoa
Figures 10–12. Adults of Edessa leucogramma. 10) Male reproductive system of Edessa leucogramma, aedeagus: a) photograph of the male aedeagus in ventral view, b) illustration of the male aedeagus in ventral view: (Ej.d.) ejaculatory duct, (Lm.f.) medial lobe of the phallus. 11) Dorsal habitus of the female. 12) Photograph of pygidium and external genitalia of the female: (VIII, IX, X) sternites 8, 9, and 10 respectively; (Sp7 and Sp8) spiracles 7 and 8.
Figures 1–3 in First report of the stinkbug Edessa leucogramma (Perty) (Hemiptera: Heteroptera: Pentatomidae: Edessinae) attacking Handroanthus chrysanthus (Jacq.) S.O. Grose (Bignoniaceae), with descriptions of the adult and immatures and notes on associated fungi and protozoa
Figures 1–3. Immature stages of Edessa leucogramma. 1) Eggs and oviposition of Edessa leucogramma. a) Number of eggs per clutch. b) Nymphs developed inside the egg. 2) First-instar nymphs of Edessa leucogramma. a) Newly emerged nymphs. b) Nymphs congregating around the egg clutches. c) Clustering nymphs showing dorsal-posterior orange spots on the abdomen. 3) Second-instar nymphs of Edessa leucogramma. a) Dorsal habitus. b) Ventral habitus.
Figures 4–6 in First report of the stinkbug Edessa leucogramma (Perty) (Hemiptera: Heteroptera: Pentatomidae: Edessinae) attacking Handroanthus chrysanthus (Jacq.) S.O. Grose (Bignoniaceae), with descriptions of the adult and immatures and notes on associated fungi and protozoa
Figures 4–6. Immature states of Edessa leucogramma. 4) Third-instar nymphs of Edessa leucogramma. a) Dorsal habitus. b) Ventral habitus. 5) Fourth-instar nymphs of Edessa leucogramma. a) Dorsal habitus. b) Ventral habitus. 6) Fifth-instar nymphs of Edessa leucogramma on host.
Figures 7–9 in First report of the stinkbug Edessa leucogramma (Perty) (Hemiptera: Heteroptera: Pentatomidae: Edessinae) attacking Handroanthus chrysanthus (Jacq.) S.O. Grose (Bignoniaceae), with descriptions of the adult and immatures and notes on associated fungi and protozoa
Figures 7–9. Adults of Edessa leucogramma. 7) Adult male of Edessa leucogramma. 8) Female external genitalia and sternites. 9) Internal reproductive system of the male. a) Dissected genitalia. b) Illustration of male genitalia: (Be.) ejaculatory bulb; (Dej.) ejaculatory duct; (Dr.) distal region; (GlsAc.) accessory glands; (Vd.) deferent ducts; (Tes.) testis exhibiting four testicular follicles; (Tues.) testicular follicle; (Pr.) proximal region.
Figures 1–4. Plants associated with the sineguelas leaf beetle 1 in Biology of the sineguelas leaf beetle, Podontia quatuordecimpunctata (L.) (Chrysomelidae: Galerucinae: Alticini), on Spondias purpurea L. (Anacardiaceae) in the Philippines
Figures 1–4. Plants associated with the sineguelas leaf beetle 1) A typical sineguelas tree (Spondias purpurea (L.) with foliage (June to November). 2) Fruits (April to June) in the Philippines. 3) Fruits of yellow sineguelas (Spondias dulcis Parkinson). 4) Fruits of "Libas" (Spondias pinnata (L.f.) Kurz). (Photographs courtesy of SLB project).
Figure 5 in Oldest shrimp and associated phyllocarid from the Lower Devonian of northern Russia
Figure 5. Restoration of (A) Pechoracaris aculicauda sp. nov. and (B) Archangeliphausia spinosa sp. nov.
Figure 3 in Oldest shrimp and associated phyllocarid from the Lower Devonian of northern Russia
Figure 3. Archangeliphausia spinosa sp. nov. A, specimen with oblique dorsoventrally compressed carapace and well preserved scaphocerite of 2nd antenna (PIN 4983/2). B, specimens with partially preserved telson and uropods (PIN 4983/ 32a, b). C, specimens with partially preserved telson and uropods (PIN 4983/12a, b). D, posterior part of abdomen with well preserved 6th pleosomite (PIN 4983/4a). E, posterior part of abdomen with well preserved pleura (PIN 4983/39). F, dorsoventrally compressed 6th pleosomite and partial uropods (PIN 4983/36). G, specimen with well preserved spinose pleura (PIN 4983/31).
Figure 2 in Oldest shrimp and associated phyllocarid from the Lower Devonian of northern Russia
Figure 2. Archangeliphausia spinosa sp. nov. A, holotype (PIN 4983/1a: right) and associated specimen (PIN 4983/1b). B, largest specimen found (PIN 4983/35), with relatively thick cuticle. C, juvenile specimen (PIN 4983/37). E, specimen with dorsoventrally compressed telson and uropods (PIN 4983/28; see also Fig. 4C). D, posterior part of abdomen with well preserved 6th pleosomite and telson (PIN 4983/8).
Fig. 11 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 11. Female genitalic structures, comprising bursa copulatrix and seminal depository in dorsal view, vestibulum in anterior view, and—if sclerotizations are present—posterior wall.
Fig. 9 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 9. Male genitalic structures, scanning micrographs, scale bar measurements in Mm. A, B. Crassomiris fatisco. A. left: posterior view of the left paramere, right: apex of the posterior process of the left paramere. B. posterolateral view of phallotheca and right paramere from the right side. C–E. Phallospinophylus setosus. C. posterolateral view of pygophore, showing patch of stout setae. D. patch of stout setae on the pygophore. E. phallotheca. F–H. Pygovepres vaccinicola. F. anterolateral view of pygophore, showing spinous process phallotheca and left paramere. G. left: spinous process, right: close up of one of the spines. H. apex of the phallotheca. I. Rubeospineus truncatus, phallotheca and left paramere from the left side.
Fig. 8 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 8. Detail of setae comprising hemelytral vestiture, scale bar: 50 Mm. A. Crassomiris fatisco. B. Phallospinophylus setosus. C. Pygovepres vaccinicola. D. Quercophylus gonoporospinus. E. Rubellomiris bispinosus. F. Rubeospineus truncatus. Slender and stout setae are indicated by a white or black asterisk, respectively.
Fig. 7 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 7. Pretarsus, scale bar: 50 Mm. A. Crassomiris fatisco. B. Phallospinophylus setosus. C. Pygovepres vaccinicola. D. Quercophylus gonoporospinus. E. Rubellomiris bispinosus. F. Rubeospineus truncatus.
Fig. 1 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 1. Habitus photographs of Crassomiris spp., Phallospinophylus setosus, Pygovepres vaccinicola, and Quercophylus gonoporospinus.
Fig. 6 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 6. Mesothoracic spiracle and metathoracic scent gland evaporatory area, scale bar: 200 Mm. A. Crassomiris fatisco. B. Phallospinophylus setosus. C. Pygovepres vaccinicola. D. Quercophylus gonoporospinus. E. Rubellomiris bispinosus. F. Rubeospineus truncatus.
Fig. 4 in New Genera and Species of Oak-Associated Phylini (Heteroptera: Miridae: Phylinae) from Western North America
Fig. 4. Head and male genitalic structures of Pygovepres vaccinicola and Quercophylus gonoporospinus.
Data from: Spatiotemporal-social association predicts immunological similarity in rewilded mice
<p>Environmental influences on immune phenotypes are well-documented, but our understanding of which elements of the environment affect immune systems, and how, remains vague. Behaviors, including socializing with others, are central to an individual's interaction with its environment. We therefore tracked behavior of rewilded laboratory mice of three inbred strains in outdoor enclosures and examined contributions of behavior, including associations measured from spatiotemporal cooccurrences, to immune phenotypes. We found extensive variation in individual and social behavior among and within mouse strains upon rewilding. And we found that the more associated two individuals were, the more similar their immune phenotypes were. Spatiotemporal association was particularly predictive of similar memory T and B cell profiles and was more influential than sibling relationships or shared infection status. These results highlight the importance of shared spatiotemporal activity patterns and/or social networks for immune phenotype and suggest potential immunological correlates of social life.<span><br></span></p>
Data from : Metabolic footprint of Vero E6 cells highlights the key metabolic routes associated with SARS-CoV-2 infection and response to drug combinations
<p>This dataset contains representative 1D 1H NMR spectra and data used in the manuscript " Metabolic footprint of Vero E6 cells highlights the key metabolic routes associated with SARS-CoV-2 infection and response to drug combinations " . </p><p> </p><p>The present study used Nuclear Magnetic Resonance-based metabolic footprinting to characterize the secreted cellular metabolite levels (exometabolomes) of Vero E6 cells in response to SARS-CoV-2 infection and to two candidate drugs (Remdesivir, RDV and Azithromycin, AZI). </p><p> </p><p><strong>Supplementary File 1.zip = </strong>Representative 1D 1H NMR profiles of examined VE6 esometabolomes, </p><p> </p><p><strong>Supplementary File 2.xlsx</strong> = Average Mean ± Standard Deviations of NMR relative quantified data (integrals, a.u.) from examined VE6 esometabolomes. </p><p> </p><p><strong>Supplementary File 3.csv = </strong>p–values and associated False Discover Rate (FDR) derived from univariate ANOVA with Fischer's LDS post-hoc test comparisons carried out on NMR relative quantified data.</p><p> </p><p><strong>List of Supplementary Files derived from Metabolite Set Enrichment Analysis (MSEA) : </strong></p><p> </p><p><strong>Supplementary File 4.csv </strong>= Tabular Results from MSEA performed on VE6+ VE6- comparison.</p><p><strong>Supplementary File 5.csv </strong>= Tabular Results from MSEA performed on VE6+ RDV vs. VE6+ comparison.</p><p><strong>Supplementary File 6.csv </strong>= Tabular Results from MSEA performed on VE6+ AZI vs. VE6+ comparison.</p><p><strong>Supplementary File 7.csv</strong> = Tabular Results from MSEA performed on VE6+ R+A vs. VE6+ comparison.</p><p> </p>
Data associated to the paper "Phase diagram detection via Gaussian fitting of number probability distribution"
<p>We investigate the number probability density function that characterizes subportions of a quantum many-body system with globally conserved number of particles. We put forward a linear fitting protocol capable of mapping out the ground-state phase diagram of the rich one-dimensional extended Bose-Hubbard model: The results are quantitatively comparable with more sophisticated traditional and machine learning techniques. We argue that the studied quantity should be considered among the most informative bipartite properties, being moreover readily accessible in atomic gases experiments.<br><br>The dataset contains the entanglement spectra of several configurations of the extended Bose-Hubbard model ground state for different systems' sizes. </p>
Groundwater level data, aquifer system boundaries, and supplementary tables associated with Jasechko, S. et al. Rapid groundwater decline and some cases of recovery in aquifers globally. Nature, doi.org/10.1038/s41586-023-06879-8 (2024).
<p>Groundwater level data, aquifer system boundaries, and Supplementary Tables associated with Jasechko, S., Seybold, H., Perrone, D., Fan, Y., Shamsudduha, M., Taylor, R.G., Fallatah, O., Kirchner, J.W. Rapid groundwater decline and some cases of recovery in aquifers globally. Nature, https://doi.org/10.1038/s41586-023-06879-8 (2024).</p>
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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.