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852 results for “Psocodea”
Fig. 1 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 1. Hypotheses for the current distribution of Thyrsophorini. A. Dispersal of Thyrsopsocopsis Mockford, 2004 from the Neotropics. B. Vicariance, as a consequence of the population split, occurred in the hypothesized most recent common ancestor of Thyrsophorini and Cycetini. C. Parallel evolution between the Neotropical and Asian lineages.
Fig. 4 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 4. Parsimony based reconstruction of Thyrsophorini historical biogeography. A. Parsimony based ancestral reconstruction implemented in Mesquite 3.04. B. S-DIVA biogeographical reconstruction.
Fig. 3 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 3. Generic-level cladogram derived from parsimony analysis of the morphological dataset based on a heuristic search with 1000 replicates (L = 127, CI = 40, Ri = 59), followed by TBR branch swapping, with character optimizations, symmetric resampling (*0.33), Bremmer support (*greater than 0.33 for the current dataset) and relative bootstrap (*greater than 70%). Circles represent character optimizations: ○ = unique changes; ● = homoplasic characters.
Fig. 2 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 2. Thyrsopsocopsis amazonicus sp. nov., ♂, holotype. A. Front view of head. B. Paraprocts, epiproct and clunium. C. Forewing. D. Hindwing. E. Phallosome. F. Hypandrium. Scales in mm.
Fig. 7 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 7. Morphological homology of the hypandrial tubercles between the Neotropical and Oriental species. A. T. amazonicus sp. nov. B. T. thorntoni Mockford, 2004. Anterior –A and –P axis indicated on left. Scales in mm.
Fig. 5 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 5. Bayesian algorithms based reconstruction of the Thyrsophorini biogeography. A. Biogeographic regions considered in the analyses: Blue: Neotropics (A), purple: Oriental (B), Cream: Nearctic (C), Orange: Paleartic (D), Green: Australasia (E). B. Reconstructed distribution using Bayesian Binary MCMC (BBM).
Fig. 6 in Historical biogeography of Thyrsophorini psocids and description of a new neotropical species of Thyrsopsocopsis (Psocodea: Psocomorpha: Psocidae)
Fig. 6. Major biogeographical events occurred in Thyrsophorini (left) in accordance to the consensus reconstruction between BBM and S-DIVA analyses (right). Significant reconstructions indicated with *. I. Vicariance of the most recent common ancestor between Longivalvus Li, 1993 and Clematoscenea Enderlein, 1907. II. Allopatric speciation in the MRCA of Sundapsocus Smithers, 1995 and Cervopsocus New, 1978. III. Dispersal event occurred in Thyrsopsocopsis Mockford, 2004.
FIG. 11 in A new Cretaceous psocodean family from the Charente-Maritime amber (France) (Insecta, Psocodea, Psocomorpha)
FIG. 11. — Strict consensus cladogram of the Psocomorpha including Arcantipsocus n. gen. and Electrentomum Enderlein, 1911. See Appendix for the matrix of character state used. *, all the genera belonging to the family.
Fig. 1 in A new species of Prionoglaris Enderlein (Psocodea: 'Psocoptera': Prionoglarididae) from an Armenian cave, with an account of the distribution of the genus
Fig. 1. Prionoglaris kapralovi sp. nov. (A) Habitus of male, dorsal view of holotype, in alcohol (body length 3.3 mm). (B) Habitus of female, lateral view of paratype, in alcohol (body length 4.1 mm). (C) Male terminalia, ventral view of holotype, in alcohol. Photographs by S. A. Kapralov.
Fig. 3 in A new species of Prionoglaris Enderlein (Psocodea: 'Psocoptera': Prionoglarididae) from an Armenian cave, with an account of the distribution of the genus
Fig. 3. Prionoglaris spp.: P. stygia males from Friouato Cave, Morocco (A-F), P. stygia male from Pierre à Perret Cave, Switzerland (G), P. stygia male from W of Atzeneta del Maestrat, Spain (H), P. stygia male from the type locality, Compagnaga Cave, French Pyrenees (I), P. dactyloides, male holotype (J), P. stygia female from Friouato Cave, Morocco (K-L), P. stygia female from the type locality, Compagnaga Cave, French Pyrenees (M). – (A) Phallosome, ventral view. (B) Anterior claw of hind pretarsus. (C) Posterior claw of hind pretarsus. (D) Left forewing. (E-J) Dorso-lateral appendages and medio-internal appendage of phallosome, not in situ (E same male as in A). (K-M) Spermapore sclerite and distal part of spermathecal duct (K and M ventral view; L optical longitudinal section, lateral view).
Fig. 3 in Systematic Position of Trichadenotecnum enderleini (Roesler) (Psocodea: "Psocoptera": Psocidae)
Fig. 3. Female genitalia of Ptycta enderleini. (A) Subgenital plate, ventral view, setae on right half omitted. (B) Gonapophyses, ventral view.
Fig. 2 in Systematic Position of Trichadenotecnum enderleini (Roesler) (Psocodea: "Psocoptera": Psocidae)
Fig. 2. Male terminal structures of Ptycta enderleini. (A) Terminalia, lateral view. (B) Epiproct, dorsal view. (C) Hypandrium, posterior view. (D) Phallosome, ventral view. (E) Ditto, lateral view.
Fig. 1 in NEW SPECIES OF THE GENUS STENOPSOCUS HAGEN, 1866 (INSECTA: PSOCODEA) FROM VIETNAM
Fig. 1. Stenopsocus beroni sp. n., holotype, female: A – lateral view, B – dorsal view of the head, C – lateral view of the head, D – forewing, E – close view of the pterostigma pigmentation, F – hindwing, G – ventral view of epiproct and paraprocts, H – ventral view of the abdomen.
Fig. 2 in NEW SPECIES OF THE GENUS STENOPSOCUS HAGEN, 1866 (INSECTA: PSOCODEA) FROM VIETNAM
Fig. 2. Stenopsocus tamdaoi sp. n., holotype, female: A – lateral view, B – dorsal view of the head, C – lateral view of the head, D – forewing, E – close view of the pterostigma pigmentation, F – hindwing, G – ventral view of subgenital plate, epiproct and paraprocts, H – dorsal view of the abdomen.
Figs 5-9 in A new Epipsocus (Psocodea: Psocomorpha: Epipsocidae) from the Brazilian Amazonia, with supernumerary forewing venation
Figs 5-9. Epipsocus manausensis sp. nov., ♀: 5, forewing; 6, hindwing; 7, Forewing venation of another female specimen; 8, subgenital plate; 9, posterior border of clunium, epiproct, right paraproct, gonapophyses and ninth sternum. Scales in mm. Figs 5, 6 to common scale.
Figs 1-4 in A new Epipsocus (Psocodea: Psocomorpha: Epipsocidae) from the Brazilian Amazonia, with supernumerary forewing venation
Figs 1-4. Epipsocus manausensis sp. nov., ♂, male: 1, forewing; 2, hindwing; 3, hypandrium and phallosome; 4, posterior border of clunium, left paraproct and epiproct. Scales in mm. Figs 1, 2 to common scale.
Fig. 4 in Prevalence and diversity of parasitic bird lice (Insecta: Psocodea) in northeast Arkansas
Fig. 4. Phylogeny of lice in the genera Myrsidea (a) and Brueelia (b) based on a concatenated alignment of cox1 and EF1-α sequences. Bootstrap values are located above the associated branches. Only values>50% are shown. Novel samples are labeled with the host species name followed by a 7-digit extraction code. All other ingroup samples were obtained from NCBI GenBank and are labeled with host species names. Outgroups are labeled with genus of louse followed by host species.
Fig. 3 in Prevalence and diversity of parasitic bird lice (Insecta: Psocodea) in northeast Arkansas
Fig. 3. Prevalence of lice, prevalence of mites, and co-occurrence of lice and mites recovered from different families of birds. Parentheses next to family names indicate sample sizes and lines on the bar plots indicate standard error. Significant p-values for chi-square and Fisher's exact tests are indicated by the asterisk to the left of family names.
Fig. 2 in Prevalence and diversity of parasitic bird lice (Insecta: Psocodea) in northeast Arkansas
Fig. 2. Prevalence, mean intensity, and mean abundance among lice from hosts in the family Turdidae (a) and Parulidae (b). Lines on the bar plots indicate 95% confidence intervals. Parentheses next to species names indicate sample sizes. Phylogenies are cladograms generated from distributions of trees from birdtree.org.
Fig. 1 in Prevalence and diversity of parasitic bird lice (Insecta: Psocodea) in northeast Arkansas
Fig. 1. The diversity of louse genera collected from 28 families of birds. Colors associated with each louse genus are indicated in the right-side legend. The numerical values indicate percentages. The sample size is indicated by the parenthesize to the right of genus names. (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
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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)
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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.