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MAP 1 in Systematics And Analysis Of The Radiation Of Orthotylini Plant Bugs Associated With Callitroid Conifers In Australia: Description Of Five New Genera And 32 New Species (Heteroptera: Miridae: Orthotylinae)
MAP 1. Distribution of Avititerra and Blattakeraia species.
FIGURE 6 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 6: Tarsonemus striatus n. sp., male: A – left leg I in dorsal view; B – left leg II in dorsal view.
FIGURE 3 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 3: Tarsonemus striatus n. sp., female: A – left leg I in dorsal view; B – left leg II in dorsal view.
FIGURE 2 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 2: DIC micrographs of Tarsonemus striatus n. sp. female: A – central part of prodorsal shield; B – central part of tergite C; C – central parts of tergites D and EF; D – pharynx; E – central part of posterior sternal plate; F – central part of anterior sternal plate.
FIGURE 4 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 4: Tarsonemus striatus n. sp., female: A – left leg III in ventral view; B – left leg IV in ventral view.
FIGURE 7 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 7: Tarsonemus striatus n. sp., male: A – left leg III in dorsal view; B – left leg IV in dorsal view.
FIGURE 8 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 8: DIC micrographs of Tarsonemus striatus n. sp. male: A – central part of prodorsal shield; B – central part of tergite CD; C – right part of posterior sternal plate.
FIGURE 11 in A new species of Tarsonemus (Acari: Tarsonemidae) associated with the bark beetle, Polygraphus proximus (Coleoptera: Curculionidae: Scolytinae) from the Far East of Russia
FIGURE 11: SEM micrographs of Tarsonemus striatus n. sp. females, phoretic on four-eyed fir bark beetle, Polygraphus proximus: A – ventral view of the beetle with phoretic mite (arrow); B, C – detailed view.
Figure 3 in Two new species of microdispid mites (Acari: Heterostigmata: Pygmephoroidea) associated with Lucanus ibericus (Coleoptera: Lucanidae)
Figure 3 Premicrodispus gorganiensis sp. nov., female. A – leg III, B – leg IV.
Figure 2 Premicrodispus gorganiensissp. nov., female. A – leg I, B – leg II in Two new species of microdispid mites (Acari: Heterostigmata: Pygmephoroidea) associated with Lucanus ibericus (Coleoptera: Lucanidae)
Figure 2 Premicrodispus gorganiensissp. nov., female. A – leg I, B – leg II.
Figure 6 in Two new species of microdispid mites (Acari: Heterostigmata: Pygmephoroidea) associated with Lucanus ibericus (Coleoptera: Lucanidae)
Figure 6 Neomicrodispus lucani sp. nov., female. A – leg III, B – leg IV.
Figure 5 in Two new species of microdispid mites (Acari: Heterostigmata: Pygmephoroidea) associated with Lucanus ibericus (Coleoptera: Lucanidae)
Figure 5 Neomicrodispus lucani sp. nov., female. A – leg I, B – leg II.
FIGURE 1 in New records of carabid-associated mesostigmatic mites (Acari: Mesostigmata) from Ukraine with description of adults of Halodarcia carabidophila Evans and Fain, 1995 (Halolaelapidae)
FIGURE 1: Halodarcia carabidophila Evans and Fain, 1995, female: A – idiosoma, dorsal view (setae of the soft cuticle in the podonotal region on the left side were not drawn); B – idiosoma, ventral view; C-D – variety of shape of anal shields; E – gnathotectum; F – subcapitulum and palp; G – chelicera. Male: H – idiosoma, ventral view; I – gnathotectum; J – corniculus; K – variety of shape of chelicerae. Scale bar: A-D, H 200 µm, E, G, I, K, L 100 µm, F, J 200 µm.
FIGURE 2 in New records of carabid-associated mesostigmatic mites (Acari: Mesostigmata) from Ukraine with description of adults of Halodarcia carabidophila Evans and Fain, 1995 (Halolaelapidae)
FIGURE 2: Halodarcia carabidophila Evans and Fain, 1995, female: A – leg I (from coxa to tibia); B – leg II; C – leg III; D – leg IV. Scale bar 200 µm.
FIGURE 2 in Description Of A New Ant-Associated Species (Acari: Mesostigmata: Laelapidae) From Iran
FIGURE 2: Myrmozercon iranicus Babaeian and Nemati n. sp., female: A – Leg I, right side; B – Leg II, left side; C – Leg III, right side; D –
FIGURE 1 in Description Of A New Ant-Associated Species (Acari: Mesostigmata: Laelapidae) From Iran
FIGURE 1: Myrmozercon iranicus Babaeian and Nemati n. sp., female: A – Dorsal idiosoma; B – Ventral idiosoma; C – Gnathosoma; D – Epistome; E – Palp, right side (trochanter, femur and genu); F – Palp-tarsal apotele; G – Chelicera.
Fig. 12 in A review of Paratranes Zimmerman, 1994, Xanthorrhoea-associated weevils of the Tranes group (Coleoptera, Curculionidae, Molytinae), with description of a new species
Fig. 12. Geographical distribution of Paratranes Zimmerman, 1994 in Australia.
Trait-habitat associations explain novel bird assemblages mixing native and alien species across New-Zealand landscapes
<p><strong>Aim</strong>: Species introductions have reshaped island faunas for the last 200 years, often threatening native biodiversity. Approximately equal numbers of native and alien species currently co-occur in the New Zealand avifauna, but they show distinct habitat use. Antagonistic interactions, habitat affinities and legacies of introduction history may concur to explain their segregation along habitat gradients. To investigate these processes, we explored how habitat, ecological traits and introduction history relate with the current composition of bird assemblages.</p> <p><strong>Location</strong>: New Zealand</p> <p><strong>Taxon</strong>: Birds</p> <p><strong>Methods</strong>: We analysed 917 bird point counts spread along habitat and elevation gradients in the Canterbury region, South Island, and related 10 ecological traits to landscape composition using a three-table ordination method known as 'RLQ analysis', accounting for spatial autocorrelation and phylogeny. We tested whether alien species' positions in the RLQ were related to proxies of introduction history.</p> <p><strong>Results</strong>: Eighteen endemic, 11 native and 19 alien species were distributed along a gradient from forest to open-habitat assemblages, in relation to foraging mode, nesting site and body size. A second gradient segregated species between native and exotic forests according to territoriality, sedentarity and diet. Traits accounted for the separation of native and alien bird species in forests, but not in open habitats. Phylogenetic signals emerged from the separation of native and alien species by forest type, and spatial structures suggested a landscape-level, rather than regional or local determinism. These correlations were independent of introduction history, although open-habitat assemblages tended to host alien species introduced later in time. </p> <p><strong>Main conclusions: </strong>Habitat type and resource availability explain the spatial partitioning of New Zealand bird assemblages between native and alien species more consistently than competitive exclusion. We conclude that trait-mediated ecological differences among species have likely played a predominant role in species' segregation among landscapes, while maintaining endemic bird assemblages in native forests. </p>
Figure 2 in Two new species of Pavania (Acari: Heterostigmata: Dolichocybidae) associated with scarab beetles (Coleoptera: Scarabaeidae) from Tanzania and Madagascar
Figure 2. Pavania neoafricana sp. nov. (female) – A–D. Right legs I-IV, respectively.
Figure 5 in Two new species of Pavania (Acari: Heterostigmata: Dolichocybidae) associated with scarab beetles (Coleoptera: Scarabaeidae) from Tanzania and Madagascar
Figure 5. Pavania madagascariensis sp. nov. (female) – A–D. Right legs I-IV, respectively.
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.