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1,226 results for “Pseudoscorpiones”
Figs. 1 y 2 in Los lepidópteros heteróceros de la rambla del Puente de la Quebrada y Cueva del Meadero (Almería, España) y algunos casos de foresia detectados sobre Agrotis boetica (Boisduval, [1837]), Agrotis lasserrei (Bugnion, 1837) y Eremochlaena orana (Lucas, 1894) por el pseudoescorpión Diplotemnus insolitus Chamberlin, 1933. (Lepidoptera: Noctuidae. Pseudoscorpiones: Atemnidae).
Figs. 1 y 2.- Zona de estudio en la Península Ibérica, Andalucía y Almería. Imagen base de libre distribución procedente de GOOGLE EARTHĢ.
Figura 13 in Los lepidópteros heteróceros de la rambla del Puente de la Quebrada y Cueva del Meadero (Almería, España) y algunos casos de foresia detectados sobre Agrotis boetica (Boisduval, [1837]), Agrotis lasserrei (Bugnion, 1837) y Eremochlaena orana (Lucas, 1894) por el pseudoescorpión Diplotemnus insolitus Chamberlin, 1933. (Lepidoptera: Noctuidae. Pseudoscorpiones: Atemnidae).
Figura 13: Ejemplar ♂ de Diplotemnus insolitus Chamberlin, 1933, sobre un 1 ♂ de Agrotis lasserrei (Bugnion, 1837).
Figs 1–8 in Neobisium (Neobisium) courtiali, a new pseudoscorpion species from France (Arachnida: Pseudoscorpiones, Neobisiidae)
Figs 1–8 – Neobisium (N.) courtiali n. sp., ♂ holotype: 1, carapace, dorsal view (slightly inclined to the left); 2, right chelicera, dorsal view; 3, anterior processes of right coxa I; 4, trochanter, femur and patella of right pedipalp, dorsal view; 5, right pedipalpal chela, dorsal view; 6, same, antiaxial view, with magnified detail of teeth; 7, apex of movable chelal finger, ventral view; 8, right leg IV, antiaxial view, with magnified detail of subterminal seta of telotarsus.
Fig. 37 in Two new species of Acanthocreagris from Corsica and mainland France, and notes on some congeneric species (Pseudoscorpiones: Neobisiidae)
Fig. 37 – Map depicting known distribution of Acanthocreagris species from southeastern France, Italy, Corsica, Sardinia, Sicily and Maltese Archipelago (localities taken from Gardini 1998, 2018 and present paper).
Figs 1–8 in Two new species of Acanthocreagris from Corsica and mainland France, and notes on some congeneric species (Pseudoscorpiones: Neobisiidae)
Figs 1–8 – Acanthocreagris cyrnea sp. n., ♀ holotype: 1, epistome of carapace; 2, right chelicera, dorsal view; 3, galea of rigt movable cheliceral finger, dorsal (left) and antiaxial (right) view; 4, anterolateral process of right coxa I; 5, trochanter, femur and patella of right pedipalp, dorsal view; 6, right pedipalpal chela, dorsal view; 7, same, antiaxial view; 8, right leg IV, antiaxial view. Scale lines: 0.2 mm (2, 4–8); 0.1 mm (1, 3).
Figs 27–36 in Two new species of Acanthocreagris from Corsica and mainland France, and notes on some congeneric species (Pseudoscorpiones: Neobisiidae)
Figs 27–36 – Acanthocreagris ruffoi (Lazzeroni, 1969), ♂ Noto, Fiume Anapo (unless otherwise stated): 27, epistome of carapace; 28, movable finger of right chelicera, dorsal view; 29, ♂ Isnello, Piano Zucchi: movable finger of right chelicera, dorsal view; 30, ♀ Noto, Fiume Anapo: same; 31, anterolateral process of right coxa I; 32, trochanter, femur and patella of right pedipalp, dorsal view; 33, right pedipalpal chela, dorsal view; 34, same, antiaxial view; 35, detail of teeth at level of chelal fingers base, antiaxial view; 36, apex of chelal fingers, antiaxial view. Scale lines: 0.2 mm (27–34); 0.1 mm (35–36).
Figs 9–17 in Two new species of Acanthocreagris from Corsica and mainland France, and notes on some congeneric species (Pseudoscorpiones: Neobisiidae)
Figs 9–17 – Acanthocreagris cf. foghesa Gardini, 2018, ♂ Grotta Stirzili, Baunei (unless otherwise stated): 9, epistome of carapace; 10, movable finger of right chelicera, dorsal view; 11, ♀, same; 12, anterolateral process of right coxa I; 13, trochanter, femur and patella of right pedipalp, dorsal view; 14, right pedipalpal chela, dorsal view; 15, same, antiaxial view; 16 detail of teeth at level of trichobothrium sb, antiaxial view; 17, apex of chelal fingers, antiaxial view. Scale lines: 0.2 mm (10–15); 0.1 mm (9, 16–17).
Fig. 3. First pseudoscorpion records for Albania from the families Chthoniidae and Garypinidae. A in Fig. 17. Periclimenaeus djiboutensis Bruce, 1970, ovigerous female specimen pocl 3.7 in Two New Species and a Further Country Record of the Caridean Shrimp Genus Borradaile, 1915 from Korea (Decapoda: Palaemonidae).
Fig. 3. First pseudoscorpion records for Albania from the families Chthoniidae and Garypinidae. A, Chthonius jonicus (female). B, Chthonius rhodochelatus (female). C, Chthonius tenuis (male). D, Ephippiochthonius serbicus (female). E, Ephippiochthonius tuberculatus (female). F, Amblyolpium dollfusi (male). Scale bars = 1 mm.
Figure 2 in Contribution to the knowledge of Brazilian troglobitic Pseudoscorpiones (Arachnida): description of Pseudochthonius lubueno sp. nov. (Chthoniidae) from Serra do Ramalho karst area, state of Bahia, Brazil
Figure 2. Gruna da Altina cave: (A) details of the microhabitat of P. lubueno sp. nov., Photo A. Gambarini; (B) Guano piles, a typical substrate of occurrence of the new species, Photo: M.E. Bichuette.
Figure 1 in Contribution to the knowledge of Brazilian troglobitic Pseudoscorpiones (Arachnida): description of Pseudochthonius lubueno sp. nov. (Chthoniidae) from Serra do Ramalho karst area, state of Bahia, Brazil
Figure 1. Map showing the distribution of Pseudochthonius lubueno sp. nov. in Gruna da Altina cave, located in Serra do Ramalho, Bahia, and the distribution of Brazilian epigean and hypogean Pseudochthonius species, with the troglobitic representatives
Figure 4 in Contribution to the knowledge of Brazilian troglobitic Pseudoscorpiones (Arachnida): description of Pseudochthonius lubueno sp. nov. (Chthoniidae) from Serra do Ramalho karst area, state of Bahia, Brazil
Figure 4. Pseudochthonius lubueno sp. nov., male holotype (A-F) and female paratype (G): (A) carapace dorsal view; (B) detail of the anterior margin, with the epistome; (C) left chelicera; (D) rallum; (E) coxal spines of coxae I–II; (F) genital opening; (G) genital opening, paratype. Scale bars: A, C, E, F-G = 0.05 mm, B = 0.2 mm, D = 0.02 mm.
Figure 5 in Impact of rainforest conversion into monoculture plantation systems on pseudoscorpion density, diversity and trophic niches
Figure 5. Stable isotope values of pseudoscorpion species in different land-use systems; means with standard deviation. Dashed horizontal lines represent estimated trophic level boundaries; trophic level 1 (plant material) not shown. Decomposers feeding on detritus (trophic level 2) were assumed to be enriched in 15N by 1.7 ‰ compared to leaf litter, each following trophic level was assumed to span 3.4 ‰ (Post 2002; Potapov et al. 2019a). For abbreviations see Table 1.
Figure 3 in Impact of rainforest conversion into monoculture plantation systems on pseudoscorpion density, diversity and trophic niches
Figure 3. Bootstrap species accumulation curve based on the number of adult individuals in the studied land-use systems.
Figure 4 in Impact of rainforest conversion into monoculture plantation systems on pseudoscorpion density, diversity and trophic niches
Figure 4. Venn diagram of the species composition in the three land-use systems studied (rainforest, rubber, oil palm) in the Bukit Duabelas (left) and Harapan landscape (right). Landscape-specific species are underlined in red. The riparian-specific species in Harapan is underlined in cyan. For abbreviations see Table 1.
Figure 2 in Impact of rainforest conversion into monoculture plantation systems on pseudoscorpion density, diversity and trophic niches
Figure 2. Density of pseudoscorpions in litter and soil of the three land-use systems studied (rainforest, rubber, oil palm) in the Bukit Duabelas and Harapan landscape. Each data point represents one sampling plot (three pooled subplot samples). Only non-riparian sites are shown.
Figure 1 in Impact of rainforest conversion into monoculture plantation systems on pseudoscorpion density, diversity and trophic niches
Figure 1. Four species of pseudoscorpions found at the study sites. From left to right: Atemnidae sp.1, Lagynochthonius sp.1, Atemnidae sp.2, Hya minuta.
Figure 2 in First record of phoresy on the genus Oreodera Audinet-Serville, 1835 (Coleoptera: Cerambycidae) by the pseudoscorpion Cordylochernes scorpioides (Linnaeus, 1758) (Arachnida: Pseudoscorpiones)
Figure 2. Illustration of the male Cordylochernes scorpioides (Linnaeus, 1758) (Chernetidae) hidden under the elytra of Oreodera rufofasciata Bates, 1861. Scale bar: 1 cm. / Ilustración del macho Cordylochernes scorpioides (Linnaeus, 1758) (Chernetidae) escondido bajo los élitros de Oreodera
Figure 1. A in First record of phoretic association between Cordylochernes scorpioides (Linnaeus) (Pseudoscorpiones: Chernetidae) and Hylettus coenobita (Erichson) (Coleoptera: Cerambycidae) in central Amazon
Figure 1. A. Longhorn beetle Hylletus coenobita (Erichson, 1847) with a female of Cordylochernes scorpioides (Linnaeus) attached to its right antenna. B. Same, close-up of the pseudoscorpion.
Figure 1. A-B in Phoresy of Americhernes oblongus (Say) (Pseudoscorpiones: Chernetidae) in a species of the genus Scipopus Enderlein (Diptera: Micropezidae)
Figure 1. A-B. Pseudoscorpion Americhernes oblongus on the coxa of the hind leg of Scipopus sp. C. Ventral habitus of A. oblongus. Scale= 0.5 mm
Figures 1–6 in Description of the new species Chthonius (Ephippiochthonius) negarinae sp. nov. (Pseudoscorpiones: Chthoniidae) from Iran
Figures 1–6. Chthonius (E.) negarinae sp. nov. 1- Male holotype, carapace (showing anterior margin and chaetotaxy), dorsal view; 2- Male paratype, anterior margin of carapace; 3a- Male holotype, chelicera; 3b- Male holotype, rallum; 4- Male holotype, pedipalp; 5- Male holotype, right chela, lateral view; 6- Male paratype, tip of fixed finger, dorsal view.
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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.