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65 results for “European Integration”
FIGURES 25–29 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 25–29. Lepidocyrtus milagrosae sp. nov.: 25, clypeal and labral chaetotaxy; 26, apical labral chaetae and papillae; 27, maxilary palp (right side); 28, outer labial papilla (right side); 29, labial and postlabial chaetotaxy (right side).
FIGURES 20–22 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 20–22. Lepidocyrtus fuscocephalus sp. nov.: 20, Abd.V chaetotaxy (left side), broad circles––long ciliated chaetae, small circles––short ciliated or smooth chaetae; 21, trochanteral organ; 22, third leg unguis and unguiculus.
FIGURES 42–46 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 42–46. Lepidocyrtus semicoloratus sp. nov.: 42, clypeal and labral chaetotaxy; 43, apical labral chaetae and papillae; 44, maxillary palp (right side); 45, outer labial papilla (right side); 46, labial and postlabial chaetotaxy (right side). Black dots––ciliated chaetae, cross––scales.
FIGURE 53 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 53. Lepidocyrtus semicoloratus sp. nov.: Abd.IV chaetotaxy (left side). Broad black circles––broad ciliated macrochaetae, small black circles––thin ciliated macrochaetae.
FIGURES 31–33 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 31–33. Lepidocyrtus milagrosae sp. nov. dorsal chaetotaxy (left side): 31, Th.II; 32, Th.III; 33, Abd.I. Circles––ciliated chaetae.
FIGURE 19 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 19. Lepidocyrtus fuscocephalus sp. nov.: Abd.IV chaetotaxy (left side). Broad black circles––broad ciliated macrochaetae, small black circles––thin ciliated macrochaetae.
FIGURES 17–18 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 17–18. Lepidocyrtus fuscocephalus sp. nov. dorsal chaetotaxy (left side): 17, Abd.II; 18, Abd.III. Broad circles–broad ciliated macrochaetae, small circles––thin ciliated macrochaetae.
FIGURES 14–16 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 14–16. Lepidocyrtus fuscocephalus sp. nov. dorsal chaetotaxy (left side): 14, Th.II; 15, Th.III; 16 Abd.I. Circles–ciliated chaetae.
FIGURE 13 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 13. Lepidocyrtus fuscocephalus sp. nov.: Dorsal head chaetotaxy (left side). Broad circles––long ciliated macrochaetae, small circles––short ciliated macrochaetae.
FIGURE 41 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 41. Lepidocyrtus semicoloratus sp. nov.: Habitus lateral (specimen in alcohol, without scales).
FIGURE 8 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 8. Lepidocyrtus fuscocephalus sp. nov.: Habitus lateral (specimen in alcohol, without scales).
FIGURES 2–7 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURES 2–7. Lepidocyrtus instratus: 2, habitus lateral (from Handschin 1924); 3 Head and mesothorax in lateral view (picture from specimen in the slide "1b:Rr4/2", NMNH); 4, labial chaetotaxy (sensu Gisin 1964b); 5, dorsal cephalic and body macrochaetae (black filled dots), trichobothria (lines) and pseudopores (empty circles) (after Gisin 1964a); 6, anterior trichobotrium of Abd.IV complex (after Gisin 1964b); 7 unguis and unguiculus (after Gisin 1964a).
FIGURE 1 in Integrative taxonomy reveals three new species of European Lepidocyrtus lignorum-group (Collembola, Entomobryidae)
FIGURE 1. Phylogenetic tree inferred with Maximum Likelihood (ML) using the Concatenated dataset. Stars at nodes correspond to ultrafast bootstrap values, and their size is proportional to the value, showing only values> 70%. Vertical bars to the right of the phylogeny correspond to the molecular species delimitation methods results (ASAP, bPTP and mPTP from left to right). Scale bar represents number of substitutions per site.
Data from: Integrating three comprehensive datasets shows that mitochondrial DNA variation is linked to species traits and paleogeographic events in European butterflies.
Understanding the dynamics of biodiversity, including the spatial distribution of genetic diversity, is critical for predicting responses to environmental changes, as well as for effective conservation measures. This task requires tracking changes in biodiversity at large spatial scales and correlating with species functional traits. We provide three comprehensive resources to understand the determinants for mitochondrial DNA differentiation represented by i) 15,609 COI sequences and ii) 14 traits belonging to 307 butterfly species occurring in Western-Central Europe and iii) the first multi-locus phylogenetic tree of all European butterfly species. By applying phylogenetic regressions we show that mitochondrial DNA spatial differentiation (as measured with Gst, G'st, D and Dst) is negatively correlated with species traits determining dispersal capability and colonization ability. Thanks to the high spatial resolution of the COI data, we also provide the first zoogeographic regionalization maps based on intraspecific genetic variation. The overall pattern obtained by averaging the spatial differentiation of all Western-Central European butterflies shows that the paradigm of long-term glacial isolation followed by rapid pulses of post-glacial expansion has been a pervasive phenomenon in European butterflies. The results and the extensive datasets we provide here constitute the basis for genetically-informed conservation plans for a charismatic group in a continent where flying insects are under alarming decline.
FIGURE 9 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 9. Female terminalia of P. f us c a (A) and P. oculta, lateral view (B) and cerci with infra-anal plate of P. f u s c a (C) and P. oculta (D) in ventral view.
FIGURE 12 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 12. Gonopodium of P. ericarum, redrawed from Alexander, 1966 (A) and specimen from Bolu, Turkey (B), dorsal view.
FIGURE 1 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 1. Known collection sites of P. f u s c a n. sp. and P. occulta. Shaded area—mountainous regions of Europe, black dots —collection sites for P. f u sc a n. sp., white dots—collection sites for P. occulta.
FIGURE 11 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 11. Wing and genitalia series of P. f u s c a n. sp. and P. occulta from dorsal, lateral and interior perspectives. Mountains of origin are marked on Fig. 1.
FIGURE 10 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 10. Phylogenetic relationship of P. f us c a n. sp. and P. occulta, inferred by neighbor-joining analysis, with P. straminea as outgroup. Black circles bootstrap values> 95 after 1000 iterations. Scale bar nucleotide substitutions per site.
FIGURE 8 in Discovery of the second European Amalopis species: an integrative survey of the widespread Pedicia (Amalopis) occulta (Meigen, 1830) (Insecta, Diptera, Pediciidae)
FIGURE 8. Gonopodium of P. f u s c a, lateral (A), dorsal (B) and interior (C) view, P. occulta from lateral (D), dorsal (E) and interior (F) view. Scale bar represents 0.1 mm.
ScienceDex guides
Understand access before you commit
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.