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Рис. 7–15. Lixus pulverulentus, груΔные и брюшные сегменты, хетотаксия. 7, 10, 13 – груΔные сегменты; 8, 11, 14 – брюшной сегмент I; 9, 12, 15 – брюшные сегменты VII–X; 7–9 – виΔ сбоку; 10–12 – виΔ сверху; 13–15 – виΔ снизу. Figs 7–15. Lixus pulverulentus, thoracal and abdominal segments, and chaetotaxy. 7, 10, 13 – thoracal segments; 8, 11, 14 – abdominal segment I; 9, 12, 15 –abdominal segments VII–X; 7–9 – lateral view; 10–12 – dorsal view; 13–15 – ventral view. Setae: dls – dorsolateral, dpls – dorsopleurolateral, ds – dorsal, ls – lateral, lsts – laterosternal, msts – mesosternal, pda – pedal, pds – postdorsal, prns – pronotal, prs – prodorsal, ss – spirarulum, sts – sterna, ts – terminal, vpls – ventropleural. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 7–15. Lixus pulverulentus, груΔные и брюшные сегменты, хетотаксия. 7, 10, 13 – груΔные сегменты; 8, 11, 14 – брюшной сегмент I; 9, 12, 15 – брюшные сегменты VII–X; 7–9 – виΔ сбоку; 10–12 – виΔ сверху; 13–15 – виΔ снизу. Figs 7–15. Lixus pulverulentus, thoracal and abdominal segments, and chaetotaxy. 7, 10, 13 – thoracal segments; 8, 11, 14 – abdominal segment I; 9, 12, 15 –abdominal segments VII–X; 7–9 – lateral view; 10–12 – dorsal view; 13–15 – ventral view. Setae: dls – dorsolateral, dpls – dorsopleurolateral, ds – dorsal, ls – lateral, lsts – laterosternal, msts – mesosternal, pda – pedal, pds – postdorsal, prns – pronotal, prs – prodorsal, ss – spirarulum, sts – sterna, ts – terminal, vpls – ventropleural.
Рис. 21–32. Lixus pulverulentus, кукоΛка, внешний виΔ и хетотаксия. 21 – виΔ снизу; 22 – виΔ сверху; 23 – виΔ сбоку; 24 – хетотаксия гоΛовы; 25 – хетотаксия переΔнеспинки; 26 – хетотаксия среΔнеспинки; 27 – хетотаксия заΔнеспинки; 28 – хетотаксия брюшного сегмента I; 29 – хетотаксия брюшного сегмента II; 30 – хетотаксия брюшного сегмента VII; 31 – хетотаксия брюшного сегмента VIII; 32 –хетотаксия брюшного сегмента IX. Figs 21–32. Lixus pulverulentus, pupa, habitus and chaetotaxy. 21 – ventral view; 22 – dorsal view; 23 – lateral view; 24 – chaetotaxy of head; 25 – chaetotaxy of pronotum; 26 – chaetotaxy of mesonotum; 27 – chaetotaxy of metanotum; 28 – chaetotaxy of abdominal segment I; 29 – chaetotaxy of abdominal segment II; 30 – chaetotaxy of abdominal segment VII; 31 – chaetotaxy of abdominal segment VIII; 32 – chaetotaxy of abdominal segment IX. ps – pseudocerci, Th n –thoracic segments, Ab n –abdominal segments; setae: as – apical, d – dorsal, ds – discal, fs – femoral, ls – lateral, os – orbital, pas – postatennal, pls – posterolateral, rs – rostral, sos – super-orbital, sls – superlateral, v – ventral, vs – vertical. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 21–32. Lixus pulverulentus, кукоΛка, внешний виΔ и хетотаксия. 21 – виΔ снизу; 22 – виΔ сверху; 23 – виΔ сбоку; 24 – хетотаксия гоΛовы; 25 – хетотаксия переΔнеспинки; 26 – хетотаксия среΔнеспинки; 27 – хетотаксия заΔнеспинки; 28 – хетотаксия брюшного сегмента I; 29 – хетотаксия брюшного сегмента II; 30 – хетотаксия брюшного сегмента VII; 31 – хетотаксия брюшного сегмента VIII; 32 –хетотаксия брюшного сегмента IX. Figs 21–32. Lixus pulverulentus, pupa, habitus and chaetotaxy. 21 – ventral view; 22 – dorsal view; 23 – lateral view; 24 – chaetotaxy of head; 25 – chaetotaxy of pronotum; 26 – chaetotaxy of mesonotum; 27 – chaetotaxy of metanotum; 28 – chaetotaxy of abdominal segment I; 29 – chaetotaxy of abdominal segment II; 30 – chaetotaxy of abdominal segment VII; 31 – chaetotaxy of abdominal segment VIII; 32 – chaetotaxy of abdominal segment IX. ps – pseudocerci, Th n –thoracic segments, Ab n –abdominal segments; setae: as – apical, d – dorsal, ds – discal, fs – femoral, ls – lateral, os – orbital, pas – postatennal, pls – posterolateral, rs – rostral, sos – super-orbital, sls – superlateral, v – ventral, vs – vertical.
Рис. 16–20. Lixus pulverulentus, гоΛова Λичинки и ротовые органы. 16 – виΔ сверху; 17 – усик; 18 – максиΛΛоΛабиаΛьный компΛекс; 19 – Λабрум и кΛипеус; 20 – эпифаринкс. Figs 16–20. Lixus pulverulentus, larval head and mouth parts. 16 – dorsal view; 17 – antenna; 18 – maxillolabial complex; 19 – labrum and clypeus; 20 – epipharynx. at – antenna, cl – clypeus, stp – stipes, ma – mala, plb – praelabium, plsb – postlabium; setae: als – anteriolateral, ams – anteriomedial, cls – clypeal, des – dorsal epicranial, dms – dorsal marar, fs – frontal, les – lateral epicranial, mbs – malabasiventral, mds – mandibular dorsal, mes – median, pfs – palpiferal, pslbs – postlabial, vms – ventral malar. in Description of the preimaginal stages and biology of the weevil Lixus (Dilixellus) pulverulentus (Scopoli, 1763) (Coleoptera: Curculionidae: Lixini)
Рис. 16–20. Lixus pulverulentus, гоΛова Λичинки и ротовые органы. 16 – виΔ сверху; 17 – усик; 18 – максиΛΛоΛабиаΛьный компΛекс; 19 – Λабрум и кΛипеус; 20 – эпифаринкс. Figs 16–20. Lixus pulverulentus, larval head and mouth parts. 16 – dorsal view; 17 – antenna; 18 – maxillolabial complex; 19 – labrum and clypeus; 20 – epipharynx. at – antenna, cl – clypeus, stp – stipes, ma – mala, plb – praelabium, plsb – postlabium; setae: als – anteriolateral, ams – anteriomedial, cls – clypeal, des – dorsal epicranial, dms – dorsal marar, fs – frontal, les – lateral epicranial, mbs – malabasiventral, mds – mandibular dorsal, mes – median, pfs – palpiferal, pslbs – postlabial, vms – ventral malar.
Figure 1 in The effect of photobleaching on bee (Hymenoptera: Apoidea) setae color and its implications for studying aging and behavior
Figure 1. Unstandardized color photographs of the dorsal view of a worker of Bombus huntii Greene. The square box demarcates the lateral distal region of terga 2 and 3 where setal color was sampled for the 'before' and 'after' comparisons in the control and sun-exposed treatments.
Figure 2 in The effect of photobleaching on bee (Hymenoptera: Apoidea) setae color and its implications for studying aging and behavior
Figure 2. Data distributions of 'before' and 'after' measurements of setal color on the lateral distal region of the terga 2 and 3 for the control and sun-exposed treatments. Setal color was measured using the color property hue (H). Letters above each boxplot correspond to a significant difference between treatments of at least 0.05 based on Tukey's adjusted multiple comparison tests.
Figure 3 in The effect of photobleaching on bee (Hymenoptera: Apoidea) setae color and its implications for studying aging and behavior
Figure 3. Correlation (τ) between wing wear (W) and setal color (hue, H) of three bee species: Bombus huntii Greene, Melecta pacifica fulvida Cresson, and Osmia integra Cresson. Larger H values represent increased photobleaching of setae, whereas smaller values of H represent less photobleaching of setae. Larger W represents increased wing wear, whereas smaller W represents decreased wing wear.
Figure 3 in Revising the definition of the crustacean seta and setal classification systems based on examinations of the mouthpart setae of seven species of decapods
Figure 3. Ultrastructure of the projections on the mouthparts. A, cross-section of the basal part of type I projection, which is circular in cross-sectional shape. The lumen is filled with semicircular sheath cells. Arrow indicates bundle of sensory cilia. B, close-up of semicircular sheath cells (arrow) in the basal part of a type I projection encircling the sensory cilia. C, cross-section of the basal part of a type II projection. Arrow indicates semicircular sheath cells. D, oblique section of a type IV projection, note no lumen or sheath cells. Arrowhead indicates articulation. E, cross-section of the basal part of a type IV projection showing flattened shape and no lumen. F, oblique and cross-section of setules from a pappose seta. Arrowheads indicate cross-sections, arrow indicates the articulation with the cuticle of the setal shaft. G, cross-section of setules and denticles from the distal part of a serrate seta. Arrow indicates lumen of seta. Abbreviations: D, denticle; Ge Cu, general cuticle; S, setule; Se Cu, cuticle of seta; SC, sensory cilium.
Figure 1 in Revising the definition of the crustacean seta and setal classification systems based on examinations of the mouthpart setae of seven species of decapods
Figure 1. Mouth apparatus of Cherax quadricarinatus. A, line drawing of the head region giving a medial view of the left side of the mouth apparatus. Striated area indicates sectioned tissue. Position of mouthparts resembles the live animal when not eating. B, labrum seen ventrally. Ch. quadricarinatus is the only species with setae on the labrum. C, left mandible seen dorso-laterally. All species have a heavy setation on the mandibular palp with the major part on the distalmost segment. D, left maxilla 1 seen dorsally. Most setae are found on the medial rim. E, left maxilla 2 seen dorsally. The scaphognathite has a setal rim but most of the other setae are found on the medial edge of the basis and coxa. (F) left maxilliped 1 seen dorsally. Most setae are found on the exopod and the medial rim of the basis and coxa. (G) left maxilliped 2 seen dorsally. Most setae are on the medial side of the endopod and on the exopod. (H) left maxilliped 3 seen dorsollay. The medial side of the endopod has heavy setation. Abbreviations Bas, basis; Cox, coxa; Endo, endopod; Epi, epipod; Exo, exopod; IP, incisor process; Lb, labrum; Mdp, mandibular palp; MP, molar process; Mx1, maxilla 1; Mx2, maxilla 2; Mxp1, maxilliped 1; Mxp2, maxilliped 2; Mxp3, maxilliped 3; Scapho, scaphognathite.
Armature formula of P1–P4 as follows: P5 (Fig. 2B). With outer seta of BENP arising from long setophore. Endopodal lobe triangular, reaching middle of exopod; with small spinules along outer margin and at base of inner setae; with five elements – one outer subdistal, one apical and one inner subdistal normal seta, and two inner bifurcate elements. Exopod elongate, 2.8 times as long as wide; with spinules along inner margin and with few proximal outer spinules; with six elements – three outer slender, short setae, two apical elements, of which outermost one shorter, and one inner seta. in Proposal of new genera and species of the subfamily Diosaccinae (Copepoda: Harpacticoida: Miraciidae)
Armature formula of P1–P4 as follows: P5 (Fig. 2B). With outer seta of BENP arising from long setophore. Endopodal lobe triangular, reaching middle of exopod; with small spinules along outer margin and at base of inner setae; with five elements – one outer subdistal, one apical and one inner subdistal normal seta, and two inner bifurcate elements. Exopod elongate, 2.8 times as long as wide; with spinules along inner margin and with few proximal outer spinules; with six elements – three outer slender, short setae, two apical elements, of which outermost one shorter, and one inner seta.
Figure 1b in Redescription of the megalopa of the fiddler crab Uca uruguayensis (Decapoda, Brachyura, Ocypodidae) with special emphasis on its setae
Figure 1b. Ventral view of the megalopa of Uca uruguayensis. Only the setae of left pleopods are drawn in ventral view for clarity. Scale bar: 500 mm.
Figure 5 in Redescription of the megalopa of the fiddler crab Uca uruguayensis (Decapoda, Brachyura, Ocypodidae) with special emphasis on its setae
Figure 5. Uca uruguayensis megalopa: (a) pleopods 1–4; (b) uropods and telson; (c) detail of plumose seta of pleopods; (d) detail of hooked seta of pleopod endopodites; (e) detail of plumose spines of telson. Scale bar: 300 mm (a, b); 75 mm (c, d, e).
Figure 3 in Redescription of the megalopa of the fiddler crab Uca uruguayensis (Decapoda, Brachyura, Ocypodidae) with special emphasis on its setae
Figure 3. Uca uruguayensis megalopa: (a) mandible; (b) detail of palp showing multidenticulate and sparsely plumose setae; (c) maxillule; (d) detail of cuspidate seta; (e) maxilla; (f) detail of marginal setae of scaphognathite; (g) first maxilliped; (h) second maxilliped; (i) detail of plumodenticulate seta; (j) third maxilliped. Scale bar: 300 mm (a, c, e, g, h, j); 75 mm (b, d, f, i).
Figure 2 in Redescription of the megalopa of the fiddler crab Uca uruguayensis (Decapoda, Brachyura, Ocypodidae) with special emphasis on its setae
Figure 2. Uca uruguayensis megalopa: (a) antennule; (b) detail of exopodite showing aesthetascs and sparsely plumose setae; (c) antenna. Scale bar: 300 mm (a, c); 75 mm (b).
Figure 4 in Redescription of the megalopa of the fiddler crab Uca uruguayensis (Decapoda, Brachyura, Ocypodidae) with special emphasis on its setae
Figure 4. Uca uruguayensis megalopa: (a) right cheliped; (b) detail of chela teeth; (c) pereiopods 2–4; (d) detail of cuspidate spine of pereiopods 3–4; (e) fifth pereiopod; (f) modified hooked serrate seta of fifth pereiopod. Scale bar: 500 mm (a, c, e); 75 mm (b, d, f).
Figure 6 in Structure and distribution of carapace setae in British spider crabs
Figure 6. Hamate setae of Macropodia rostrata (A), Macropodia tenuirostris (B, C), and Eurynome aspera (D–G). (A) Mr-C setae; (B) Mt-A setae; (C) Mt-C seta with setules; (D) Ea-A setae; (E) Ea-A seta close-up, with cuticle around base of denticles; (F) Ea-B seta; (G) Ea-C setae.
Figure 2 in Structure and distribution of carapace setae in British spider crabs
Figure 2. Designated carapace divisions used. Diagram of Inachus dorsettensis carapace modified from Ingle, 1980.
Figure 4 in Structure and distribution of carapace setae in British spider crabs
Figure 4. Hamate setae of Inachus dorsettensis (A, B), Inachus phalangium (C–E), and Inachus leptochirus (F–H). (A) Id-C seta tip showing mass of barbs; (B) Id-D seta; (C) Ip-A setae; (D) Ip-B setae; (E) Ip-A/B setae, where areas of Ip-A and Ip-B meet; (F) Il-A setae; (G) Il-B setae; (H) Il-B seta with denticles on two sides of shaft.
Figure 3 in Structure and distribution of carapace setae in British spider crabs
Figure 3. Hamate setae of Hyas coarctatus (A–E) and Inachus dorsettensis (F–H). (A) Hc-A setae arranged in double row facing each other; (B) Hc-A setae showing teeth-like (right seta) and worn denticles (left seta); (C) Hc-B setae; (D) Hc-C setae with setules; (E) Hc-D setae; (F) Id-A setae; (G) Id-B setae; (H) Id-C seta.
Figure 5 in Structure and distribution of carapace setae in British spider crabs
Figure 5. Hamate setae of Achaeus cranchii (A–F) and Macropodia rostrata (G, H). (A) Ac-A setae; (B) Ac-B seta; (C) Ac-C seta; (D) Ac-D seta; (E) Ac-D seta close-up, showing setules; (F) Ac-E and Ac-F setae; (G) Mr-A setae; (H) Mr-B setae.
Fig. 4. Setae comprising hemelytral vestiture. A in Revision and Cladistic Analysis of the Polyozus Group of Australian Phylini (Heteroptera: Miridae: Phylinae)
Fig. 4. Setae comprising hemelytral vestiture. A, Ancoraphylus arctous (AMNH_PBI 00087680); B, Exocarpocoris tantulus (AMNH_PBI 00135796); C, Polyozus bulita (AMNH_PBI 00168436); D, P. furcilla (AMNH_PBI 00099437); E, P. galbanus (AMNH_PBI 00139062); F, P. kojonup (AMNH_PBI 00136470). Scale bar: 50 mm.
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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.