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45 results for “synanthropic”
Figure 1 in Portia labiata (Araneae: Salticidae: Spartaeini) as predator and prey of a synanthropic Parasteatoda sp. (Araneae: Theridiidae: Theridiinae)
Figure 1. Sequential photos (1-3) showing a female Portia labiata feeding on a female Parasteatoda sp. that she has captured (Karnataka, 2 FEB 2021). Note the presence of a small kleptoparasitic spider (arrows). Photo credits: 1-3, Abhijith APC.
The role of a synanthropic bird in the nest niche expansion of a secondary cavity-nester to man-made structures
<p><span>Species with similar ecological characters often compete with each other; however, a species may also facilitate the survival or reproduction of another ecologically similar species although such interaction is rarely documented in birds. Here we reported a facilitative species interaction between Asian house martins (<em>Delichon dasypus</em>) and russet sparrows (<em>Passer cinnamomeus</em>), both passerines using closed nests, in a montane farming area of Taiwan. We found that Asian house martins constructed dome-shaped nests in human houses that provided additional nest sites for russet sparrows, secondary cavity-nesters with greatly declining populations in Taiwan. Russet sparrows that used house martin nests had reproductive success comparable to those that used artificial nest boxes. However, Asian house martins avoided reclaiming sparrow-used nests, which reduced their available nest sites. Interestingly, our results imply that man-made structures may be used as a conservation tool to improve the breeding of the endangered russet sparrows via this facilitative interaction.</span></p>
Fig. 1 in Sentinels in the shadows: Exploring Toxoplasma gondii and other Sarcocystidae parasites in synanthropic rodents and their public health implications
Fig. 1. Geographical distribution of PCR positive rodents.
The role of a synanthropic bird in the nest niche expansion of a secondary cavity-nester to man-made structures
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Data from: Rapid colonisation of synanthropic stone martens in a highly urbanised region: Insights from temporal and spatial analysis
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Diversity and host specificity of Borrelia burgdorferi's outer surface protein C (ospC) alleles in synanthropic mammals, with a notable ospC allele U absence from mixed infections
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FIG. 6. The specific synanthropic setting where the holotype and a in A new species of Scotophilus (Chiroptera: Vespertilionidae) from western Madagascar
FIG. 6. The specific synanthropic setting where the holotype and a portion of the type series of S. marovaza were collected. The arrow indicates the site and the direction bats would have entered into the day roost site within the palm leaves. (Photograph taken by Mamy Ravokatra)
FIGURE 21 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURE 21. Map of locations from which Cryptachaea gigantipes (Keyserling, 1890) were examined. Black circles are locations of specimens examined for morphology and white circles are specimens sampled for molecular analyses. The historical record of Hogg (1900) from Macedon, Victoria, is shown as a black square.
FIGURES 17–20 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURES 17–20. Cryptachaea gigantipes (Keyserling, 1890), female genitalia. 17. Ventral view; 18. Lateral view; 19. Posterior view, entry point of copulatory duct indicated, note entry on other side appears to be blocked by hardened bead of exudate; 20. Dorsal view (internal genitalia). Scale bars = 0.2 mm. Abbreviations: CD, copulatory duct; FD, fertilisation duct; S, spermatheca.
FIGURES 6–10 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURES 6–10. Cryptachaea gigantipes (Keyserling, 1890). 6. Male caput and chelicerae, anterolateral; 7. Male left pedipalp, prolateral, showing cymbial hood; 8. Female eyes and chelicerae, frontal; 9. Male mouthparts and sternum, ventral; 10. Female, ditto. Scale bars, Fig. 7 = 0.1 mm, others = 0.5 mm. Abbreviation: Hd, cymbial hood.
FIGURES 2–5 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURES 2–5. Cryptachaea gigantipes (Keyserling, 1890). 2. Habitus of male (St. Peters, Sydney); 3. Female guarding emerging spiderlings (Coburg, Melbourne); 4. Female with egg sac 27 Sept 2011 (Coburg, Melbourne); 5. Same female, 13 November; spiderlings emerged from first egg sac are nearby in female's web, a recently completed egg sac hangs behind remains of first. Photos 3–5 by Wendy Moore, used with permission.
FIGURE 1 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURE 1. Bayesian consensus tree based on cytochrome c oxidase subunit 1 (COI) sequence data. Values on branches are posterior probabilities. Haplotype codes are listed in Table 1. Branch lengths are proportional to the expected number of substitutions per site (see scale bar). Abbreviations (Australia): NSW, New South Wales; QLD, Queensland; TAS, Tasmania; VIC, Victoria. Abbreviations (New Zealand): AK, Auckland; BP, Bay of Plenty; KE, Kermadec Islands; MC, Mid Canterbury; ND, Northland; WN, Wellington; WO, Waikato. New Zealand area codes follow Crosby et al. (1998).
FIGURES 11–16 in Redescription and generic placement of the spider Cryptachaea gigantipes (Keyserling, 1890) (Araneae: Theridiidae) and notes on related synanthropic species in Australasia
FIGURES 11–16. Male genitalia of Cryptachaea species. 11–13. Cryptachaea gigantipes (Keyserling, 1890), left pedipalp in prolateral, ventral and retrolateral views; 14. Ditto, expanded, prolateral; 15. Ditto, median apophysis and embolus, proapical view; 16. Cryptachaea veruculata (Urquhart, 1886), left pedipalp expanded, prolateral. Scale bars = 0.2 mm. Abbreviations: C, conductor; Cy, cymbium; E, embolus; L, lobe; MA, median apophysis; MS, MA sclerotised process; Po, pouch in conductor; ST, subtegulum; T, tegulum; Tb, trichobothria; TO, tarsal organ.
FIGURES 12–18. Anyphaena zuyelenae n in Two new synanthropic species of Anyphaena Sundevall (Araneae: Anyphaenidae) associated to houses in Mexico City
FIGURES 12–18. Anyphaena zuyelenae n. sp.: 12 male palp, ventral view; 13 same, retrolateral view; 14 male cephalothorax, ventral view; 15 female epigynum, ventral view; 16 male palp, ventral view; 17 female epigynum, ventral view; 18 same, dorsal view. Abbreviations: A, Atrium; MA, Median Apophysis; TP, Tegular Projection. Scale bars: 0,05 mm.
FIGURES 5–11. Anyphaena zorynae n in Two new synanthropic species of Anyphaena Sundevall (Araneae: Anyphaenidae) associated to houses in Mexico City
FIGURES 5–11. Anyphaena zorynae n. sp.: 5 male palp, ventral view; 6 same, retrolateral view; 7 male cephalothorax, ventral view; 8 female epigynum, ventral view; 9 male palp, ventral view; 10 female epigynum, ventral view; 11 same, dorsal view. Abbreviations: A, Atrium; MA, Median Apophysis; TP, Tegular Projection. Scale bars: 0,05 mm.
FIGURES 1–4. Anyphaena zorynae n in Two new synanthropic species of Anyphaena Sundevall (Araneae: Anyphaenidae) associated to houses in Mexico City
FIGURES 1–4. Anyphaena zorynae n. sp., habitus, dorsal view: 1 male; 2 female. Anyphaena zuyelenae n. sp., same: 3 male; 4 female. Scale bars: 5 mm.
FIGURES 1–7 in A new synanthropic species of Charinus Simon, 1892 from Brazilian Amazonia and notes on the genus (Arachnida: Amblypygi: Charinidae)
FIGURES 1–7. Charinus vulgaris sp. nov. (female holotype). 1. Cephalotorax. 2. Latero-frontal view of the anterior carapace margin with the six setae and the frontal process. 3. Sternum. 4. Right pedipalp ventral view. 5. Right pedipalp dorsal view. 6. Arrangement of trichobothria on fourth basitibial segment and distibiae of left leg IV. 7. Left chelicerae (female paratype). Scale bars 1.0mm.
FIGURES 11–12 in A new synanthropic species of Charinus Simon, 1892 from Brazilian Amazonia and notes on the genus (Arachnida: Amblypygi: Charinidae)
FIGURES 11–12. Charinus vulgaris sp. nov. 11. Living female with offspring. 12. One of the scrapyards from where Charinus vulgaris were collected.
FIGURES 8–10 in A new synanthropic species of Charinus Simon, 1892 from Brazilian Amazonia and notes on the genus (Arachnida: Amblypygi: Charinidae)
FIGURES 8–10. Charinus vulgaris sp. nov. (female paratypes). 8. Gonopods dorsal view. 9. Gonopods dorsal view. The atrium of the seminal receptacle can be seen. 10. Gonopods view from behind.
Fig. 1 in Rancho La Brea Fossil Indicates Native Nearctic Status for Necrobia violacea (Linnaeus) (Coleoptera: Cleridae), a Species Previously Considered a Synanthropic Introduction to North America
Fig. 1. Stacked photographs of the heads and pronota of Necrobia species. A) Modern, British N. violacea from the British Collection in the Natural History Museum, London, photographed by RBA, B) Fossil N. violacea from the Rancho La Brea Tar Pits, photographed by ARH, C) Modern, British N. rufipes from the British Collection in the Natural History Museum, London, photographed by RBA.
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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.