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Fig. 2 in Integrative taxonomy of the seasonally polyphenic scorpionfly Panorpa liui Hua, 1997 (Mecoptera: Panorpidae)
Fig. 2 Adults of Panorpa liui in habitat. a, d Yellow morph. b Intermediate morph. c, f Black morph. e Deep black morph
Fig. 1 in Integrative taxonomy of the seasonally polyphenic scorpionfly Panorpa liui Hua, 1997 (Mecoptera: Panorpidae)
Fig. 1 Geographic distribution of the four color morphs for Panorpa liui. Population ID provided in Table S1
Fig. 3 in Integrative taxonomy of the seasonally polyphenic scorpionfly Panorpa liui Hua, 1997 (Mecoptera: Panorpidae)
Fig. 3 Variation of the male genitalia of Panorpa liui, ventral views. a–c Yellow morph. d, h Deep black morph. e–g Black morph. bst, basal stalk; gcx, gonocoxite; gs, gonostylus; hv, hypovalve; vv, ventral valve; scale bars = 0.5 mm
FIGURE 2 in Morphology and chaetotaxy of the first instar larva of the scorpionfly Sinopanorpa tincta (Mecoptera: Panorpidae)
FIGURE 2. Head of first instar larva of S. tincta, SEM. (A) Dorsal view; (B) Lateral view; (C) Ventral view, with the flagellum removed during preparation; (D) Compound eye; (E) Antenna, ventral view. Abbreviations: Ant, antenna; C, clypeal setae; Cas, cardo-stipes; CS, coronal suture; E, compound eye; EB, egg burster; FCS, frontoclypeal sulcus; F, frontal setae; Fl, flagellum; Fr, frons; FS, frontal suture; Gl, galea; L, lateral setae; Lm, labrum; LP, labial palp; Md, mandible; MP, maxillary palp; O, ocular setae; Pe, pedicel; Pm: postmentum; Prm, prementum; Sc, scape; SO, subocular setae; V, vertical setae; Vx, vertex. Scale bars: A–C = 100 µm; D and E= 50 µm.
FIGURE 1 in Morphology and chaetotaxy of the first instar larva of the scorpionfly Sinopanorpa tincta (Mecoptera: Panorpidae)
FIGURE 1. First instar larva of Sinopanorpa tincta, inset showing the left compound eye. Scale bar = 0.5 mm.
FIGURE 4 in Morphology and chaetotaxy of the first instar larva of the scorpionfly Sinopanorpa tincta (Mecoptera: Panorpidae)
FIGURE 4. First instar larva of S. tincta, SEM. (A) Thoracic legs, lateral view; (B) Prothoracic spiracle; (C) Ventral prolegs of abdominal segments VII and VIII (A7, A8), lateral view; (D) First abdominal spiracle. Abbreviations: AO, atrial orifice; Ap, aperture; Cx, coxa; Fm, femur; Pts, pretarsus; T, thorax; Tb, tibia; Ts, tarsus. Scale bars: A = 200 µm; B and D = 10 µm; C = 50 µm.
FIGURE 3 in Morphology and chaetotaxy of the first instar larva of the scorpionfly Sinopanorpa tincta (Mecoptera: Panorpidae)
FIGURE 3. Mouthparts of first instar larva of S. tincta, SEM. (A) Epipharynx; (B) Right mandible, front view; (C) Left mandible, caudal view; (D) Maxillae and labium, caudo-ventral view; (E) Right maxilla with a labial palp, front view; (F) Magnification of the basal part of the galea and lacinia, front view, showing sensilla; (G) Labium, caudal view; (H) Left labial palp, front view. Abbreviations: c, condyle of mandible; Cas, cardo-stipes; g, ginglymus of mandible; Gl, galea; IC, incisor cusp; La, lacinia; LP, labial palp; Lr, labral setae; MP, maxillary palp; MR, molar region; MT, molar teeth; Pf, palpifer; Prm, prementum; PS, palm-like sensillum; SB, sensillum basiconica; SD, salivary duct. Scale bars: A–D = 50 µm; E, G and H = 20 µm; F = 10 µm.
FIGURE 3 in Evolving longer for a mate: A new scorpionfly (Mecoptera: Panorpoidea: Panorpidae) with exaggeratedly elongated male abdominal segments
FIGURE 3. Fossil (drawings showing only A6–A9) and extant (color habitus) scorpionfly species with exaggeratedly elongated abdominal segments (EEAS) on a time scale (males). Putative origins of the male EEAS are marked by circled numerals 1–7. All the species are at the same scale. Scale bars: 5.0 mm. Ma: million years ago.
FIGURE 2 in Evolving longer for a mate: A new scorpionfly (Mecoptera: Panorpoidea: Panorpidae) with exaggeratedly elongated male abdominal segments
FIGURE 2. Neopanorpa exaggerata sp. n. A. Holotype (CN22Pa00800); B, M, N. Paratype (CN22Pa00803); C–L. Paratype (CN22Pa00801). Abdominal segments are marked by Roman Numerals. A. Male, dorsal view; B. Female, dorsal view; red arrows indicate wing membrane breakages relating to possible traumatic mating behavior; C. Terminal portion of left hindleg, ventral view; red arrow denotes the enlarged second preapical tooth of pretarsal claw; D & E. A3 and A4, dorsal and lateral views, respectively; F–H. A9–A11, dorsal, ventral and lateral views, respectively; I. Left gonostylus, ventral view; J. Terminal portion of A9 with gonopods removed, lateral view; K, L. Aedeagal complex, ventral and dorsal views, respectively; M. Subgenital plate, ventral view; N. Medigynium, ventral view. Abbreviations: ap, apodeme; ax, axis; bp, basal process; bs, basal stalk; ce, cercus; dbr, dorsal bridge; dv, dorsal valve; ep, epandrium; epl, epandrial lobe; gcx, gonocoxite; gs, gonostylus; hv, hypovalve; lpp, lateral process of piston; lpr, lateral process of aedeagus; mt, median tooth; no, notal organ; pa, posterior arm; pm, paramere; pno, postnotal organ; pst, piston of sperm pump; vv, ventral valve.
FIGURE 1 in Evolving longer for a mate: A new scorpionfly (Mecoptera: Panorpoidea: Panorpidae) with exaggeratedly elongated male abdominal segments
FIGURE 1. Habitat and habitus of Neopanorpa exaggerata sp. n. A. A distant view of the type locality; B. A closer view of the type locality; red arrow denotes the spot where the specimens were caught; C. Male adult of Neopanorpa exaggerata sp. n. (not in the type series) resting on a piece of leaf; red arrows indicate melanized wounds relating to possible intra-sexual disputes.
FIGURE 4 in Evolving longer for a mate: A new scorpionfly (Mecoptera: Panorpoidea: Panorpidae) with exaggeratedly elongated male abdominal segments
FIGURE 4. Distributional map of fossil and extant scorpionfly species with EEAS. Localities are indicated by gray (fossil species) and yellow dots (extant species), and a red star (new species described herein).
FIGURE 2 in The first British Cretaceous eomeropid scorpionfly (Mecoptera: Eomeropidae)
FIGURE 2.?Typhothauma agari sp. nov. A, B, Photographs of the holotype in different optical and illumination settings. C, Venation interpretation, with the hypothetical position of Sc3. Scale bars = 2 mm.
FIGURE 1 in The first British Cretaceous eomeropid scorpionfly (Mecoptera: Eomeropidae)
FIGURE 1. Map and stratigraphical column showing the positions of the Smokejacks brickworks. Modified after Austen & Batten (2018).
Fig. 1 in Review of the scorpionfly genus Dicerapanorpa Zhong & Hua (Mecoptera: Panorpidae), with descriptions of two new species
Fig. 1. Geographical distribution of Dicerapanorpa Zhong & Hua, 2013. The white dots represent the type locality of D. bifurcata sp. nov., the white asterisks indicate the type locality of D. zhengkuni sp. nov., and the red dots represent the distribution of the known species of Dicerapanorpa.
FIGURE 4 in Nedubroviidae, a new family of Mecoptera: the first Paleozoic long-proboscid scorpionflies
FIGURE 4. Nedubrovia shcherbakovi, line drawing of holotype.
FIGURE 1 in Nedubroviidae, a new family of Mecoptera: the first Paleozoic long-proboscid scorpionflies
FIGURE 1. Map showing the general locations of collection sites.
FIGURE 1 in Panorpodes kuandianensis, a new species of short-faced scorpionflies (Mecoptera, Panorpodidae) from Liaoning, China
FIGURE 1. Panorpodes kuandianensis sp. nov. A. Male, habitus; B. Female, habitus.
FIGURE 8 in Family Panorpodidae (Insecta, Mecoptera) from Baltic amber (upper Eocene): new species, redescription and palaeogeographic remarks of relict scorpionflies
FIGURE 8. Panorpodes hageni, forewing of holotype.
FIGURE 6 in Family Panorpodidae (Insecta, Mecoptera) from Baltic amber (upper Eocene): new species, redescription and palaeogeographic remarks of relict scorpionflies
FIGURE 6. Female abdomen of Panorpodes brevicauda: A, photograph; B, latero-ventral view.
FIGURE 7 in Family Panorpodidae (Insecta, Mecoptera) from Baltic amber (upper Eocene): new species, redescription and palaeogeographic remarks of relict scorpionflies
FIGURE 7. Panorpodes hageni, holotype.
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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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.