Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
4,005
datasets available to search
ShareScore release 0.7.1
Dataset results
4,005 results for “Oribatida”
Figure 4 in Ontogenetic instars ofEthiovertex africanus (Evans, 1953) (Acari, Oribatida, Scutoverticidae)
Figure 4 Ethiovertex africanus (Evans, 1953), dissected adult: a – leg I, right, antiaxial view; b – leg II, right, antiaxial view; c – leg III, left, antiaxial view; d – leg IV, left, antiaxial view. Scale bar 50 μm.
Figure 7 in Ontogenetic instars ofEthiovertex africanus (Evans, 1953) (Acari, Oribatida, Scutoverticidae)
Figure 7 Ethiovertex africanus (Evans, 1953), dissected legs of larva (a–c) and protonymph (d): a – leg I, right, antiaxial view; b – leg II, right, antiaxial view; c – leg III, left, antiaxial view; d – leg IV, left, antiaxial view. Scale bar 20 μm.
Figure 1 in Ontogenetic instars ofEthiovertex africanus (Evans, 1953) (Acari, Oribatida, Scutoverticidae)
Figure 1 Ethiovertex africanus (Evans, 1953): a – photo of locality and habitat; b – microscope image of adult, dorsal view; c – microscope image of tritonymph, dorsal view. Magnification (b, c): 10 × 40.
Figure 6 in Ontogenetic instars ofEthiovertex africanus (Evans, 1953) (Acari, Oribatida, Scutoverticidae)
Figure 6 Ethiovertex africanus (Evans, 1953), juvenile instars: a, b, c, d – epimeral and anogenital regions (legs and part of right half of body omitted) in larva, proto-, deuto-, and tritonymph, respectively; e – larva, lateral view (gnathosoma and legs except basal parts omitted); f, g – anterior part of body of proto- and tritonymph, respectively, right lateral view (gnathosoma and legs except some trochanters omitted). Scale bars 100 μm (b–d, g), 50 μm (a, e, f), 20 μm (h, j).
Figure 3 Figure 3 in Ontogenetic instars ofEthiovertex africanus (Evans, 1953) (Acari, Oribatida, Scutoverticidae)
Figure 3 Figure 3 Ethiovertex africanus (Evans, 1953), adult (c–f: dissected): a – posterior view; b – anterior part of prodorsum, anterior
Figure 2 in Two new species of Cavernocepheus (Acari, Oribatida, Otocepheidae) from Mexico
Figure 2 Cavernocepheus (Cavernocepheus) icpallitellerianin. sp., adult: a — leg I; b — leg II; c — leg III; d —leg IV. Right, paraxial view. Scale bar 100 μm.
Figure 1 in Two new species of Cavernocepheus (Acari, Oribatida, Otocepheidae) from Mexico
Figure 1 Cavernocepheus (Cavernocepheus) icpallitelleriani n. sp., adult, a — dorsal view (legs omitted), b — ventral view (legs and gnathosoma omitted), c — lateral view (legs omitted). Scale bar 100 μm.
Figure 3 in Two new species of Cavernocepheus (Acari, Oribatida, Otocepheidae) from Mexico
Figure 3 Cavernocepheus (Cavernocepheus) xipetoteci n. sp., adult, a — dorsal view (legs omitted), b — ventral view (legs and gnathosoma omitted), c — lateral view (legs omitted). Scale bar 100 μm.
Figure 3 in Contribution to knowledge of the oribatid mite genus Idiozetes (Acari, Oribatida, Idiozetidae), with description of a new sexually dimorphic species from Vietnam
Figure 3 Idiozetes schusteri sp. n., adult, male (A) and female (B–J): A, B — posterior view; C — subcapitulum (dissected), ventral view; D — left lip with adoral seta, ventral view; E — palp, right, antiaxial view; F — chelicera, left, paraxial view; G — tibia and tarsus of leg I, right, antiaxial view; H — trochanter and femur of leg I, left, paraxial view; I — tibia and tarsus of leg II, left, paraxial view; J — leg IV, right, paraxial view. Scale bars 50 μm (A, B), 25 μm (G–J), 20 μm (C, D, F), 10 μm (E).
FIGURE 4 in One step closer but still far from solving the puzzle - The phylogeny of marine associated mites (Acari, Oribatida, Ameronothroidea) inferred from morphological and molecular genetic data
FIGURE 4 Bayesian inference topology based on 66 morphological traits of 102 oribatid mite species. Posterior probability values are shown near nodes. Photographs of selected species are given to provide an insight into the basic morphology of each larger group. *Photograph shows Tegeocranellus knysnaensis, this species was not used for the analyses but is given here to visualize the typical habitus of Tegeocranellus species.
FIGURE 3 in One step closer but still far from solving the puzzle - The phylogeny of marine associated mites (Acari, Oribatida, Ameronothroidea) inferred from morphological and molecular genetic data
FIGURE 3 One of 14 most parsimonious trees based on 66 characters or character states of 98 ameronothroid and four terrestrial oribatid mite species. Bootstrap values are shown near nodes. Colours refer to different families and are the same as in preceding figures.
FIGURE 1 in One step closer but still far from solving the puzzle - The phylogeny of marine associated mites (Acari, Oribatida, Ameronothroidea) inferred from morphological and molecular genetic data
FIGURE 1 Bayesian inference tree of marine associated Ameronothroidea and terrestrial outgroups based on 18S sequences. Posterior probabilities>0.9 are shown near nodes; abbreviations: PRT – Portugal, DE – Germany, DR – Dominican Republic, JP – Japan, TW – Taiwan, MY – Malaysia; families are given in different colours. Photographs of selected species are given to provide an insight into the basic habitus of each larger group.
FIGURE 2 in One step closer but still far from solving the puzzle - The phylogeny of marine associated mites (Acari, Oribatida, Ameronothroidea) inferred from morphological and molecular genetic data
FIGURE 2 Bayesian topology based on the combined data set of coi, D3 and 18S sequences. Posterior probabilities>0.9 are shown near nodes; abbreviations: PRT – Portugal, DE – Germany, DR – Dominican Republic, TW – Taiwan.
Figs 16–20 in Nothrolohmannia Baloghi Sp. N. (Acari: Oribatida), From Rainforest In Papua New Guinea, And Reevaluation Of Nothrolohmanniidae
Figs 16–20. Nothrolohmannia baloghi sp. n., adult (scale bar lengths in parentheses): 16 = ventral aspect, anterior third (10 µm); 17 = detail of anterior subcapitulum and rostral margin (3 µm); 18 = detail of submarginal denticles (3 µm); 19 = chelicera, lateral aspect (10 µm); 20 = denticles on adaxial
Figs 13–15 in Nothrolohmannia Baloghi Sp. N. (Acari: Oribatida), From Rainforest In Papua New Guinea, And Reevaluation Of Nothrolohmanniidae
Figs 13–15. Nothrolohmannia baloghi sp. n., adult (scale bar lengths in parentheses): 13 = ventral aspect (20 µm); 14 = closeup of posterior venter, with white arrowhead indicating groove between fused anal and adanal plates (10 µm); 15 = partial ventral aspect (anterior to left) showing left legs III and IV retracted into pedofossae – white arrowheads indicate femoral tubercles, which hold respec-
Figs 8–12 in Nothrolohmannia Baloghi Sp. N. (Acari: Oribatida), From Rainforest In Papua New Guinea, And Reevaluation Of Nothrolohmanniidae
Figs 8–12. Nothrolohmannia baloghi sp. n., adult (scale bar lengths in parentheses): 8 = dorsal aspect, with legs appressed to body in defensive posture (20 µm); 9 = anterolateral aspect of prodorsum and partial leg I (10µm); 10 = detail of left dorsosejugal regioninsame view as Fig. 8, showing base of sensillus (left) and cuticular spicules (partially seen setae are in (center) and c1) (5 µm); 11 = partial frontal view, showing basal half of right sensillus (5 µm); 12 = left lateral aspect, white arrowhead on suprapleural scissure (20 µm)
Figs 3–7 in Nothrolohmannia Baloghi Sp. N. (Acari: Oribatida), From Rainforest In Papua New Guinea, And Reevaluation Of Nothrolohmanniidae
Figs 3–7. Nothrolohmannia baloghi sp. n., legs of adult female, abaxial aspect: 3 = right leg I (only basal part of flagelliform solenidion 1 drawn, famulus separately drawn in upper right); 4 = right leg II, trochanter and tarsal setae not drawn; 5 = distal region of right leg II, with seta a' drawnseparately above tarsus; 6 = left leg III, tarsal seta not drawn; 7 = left leg IV (seta p' may be absent from tarsus).
Fig. 1 in Nothrolohmannia Baloghi Sp. N. (Acari: Oribatida), From Rainforest In Papua New Guinea, And Reevaluation Of Nothrolohmanniidae
Fig. 1. Nothrolohmannia baloghi sp. n., adult female: dorsal aspect, legs only partially drawn (scale bar 50 µm). Separate details on right include two variations of anterior porose area clusters and detail
Figs 5–8 in Contribution To The Knowledge Of The Hungarian Oribatida Fauna (Acari) I.
Figs 5–8. Cyranozetes nasalis gen. et sp. n. – 5–6 = lateral part of podosoma; 7 = femur of leg II; 8 = tibia and tarsus of leg I
Figs 1–4 in Contribution To The Knowledge Of The Hungarian Oribatida Fauna (Acari) I.
Figs 1–4. Cyranozetes nasalis gen. et sp. n. – 1 = body in dorsal view; 2 = body in ventral view; 3 = rostrum; 4 = pigidial part of the body
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.