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FIGURE 11 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 11. Lasiacantha serraseta sp. nov. (a) head dorsal (♀, 30 µm); (b) head ventral (♀, 100 µm); (c) head lateral (♀, 100 µm); (d) pronotum dorsal (♀, 100 µm); (e) mesepimeron and metepisternum (♀, 30 µm); (f) hemelytra (♀, 100 µm); (g) pygophore dorsal (♂, 30 µm); (h) abdomen ventral (♀, 100 µm). Scales in brackets, measured in µm.
FIGURE 4 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 4. Lasiacantha habitats and hosts: (a) locality for L. discordis: Western Australia, 11 km N of Coolgardie-Esperance Hwy on Kambalda Rd; (b) host of L. discordis: Eremophila dempsteri; (c) locality and host for L. darwini: Eremophila sp., Western Australia, Charles Darwin Reserve, edge of claypans N of Wanarra East Rd; (d) & (e) host of L. aureolus: Eremophila sp.; (f) locality for L. aureolus: Northern Territory, ~ 75 km E of Stuart Hwy on Ernest Giles Rd; (g) locality for L. luritja: Northern Territory, 33 km E of Alice Springs on Ross Hwy; (h) host for L. luritja: Eremophila freelingii; (i) host for L. nipha: Eremophila sp., Western Australia, Charles Darwin Reserve, Wanarra East Rd, at Breakaway Well.
FIGURE 12 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 12. Male pygophore, dorsal and ventral, of three Australian Lasiacantha species, from the three species groups: (a) and (b) L. aureolus; (c) and (d) L. discordis; (e) and (f) L. graminicola. Scale = 0.1mm.
FIGURE 7 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 7. (a) Photographs of Australian Lasiacantha larvae, L. aureolus sp. nov and L. luritja sp. nov; (b) Photograph of holotype of Lasiacantha aemula (Drake, 1947) nov. comb..
FIGURE 14 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 14. Male endosoma, ventral, of three Australian Lasiacantha species, from the three species groups: (a) L. aureolus; (b) L. discordis; (c) L. graminicola. Abbreviations: DUES, distal u-shaped endosomal sclerite; bb, basal branches of DUES; cl, cleft of DUES. Scale = 0.1mm.
FIGURE 10 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 10. Lasiacantha luritja sp. nov. (a) head dorsal (♂, 30 µm); (b) head lateral (♂, 30 µm); (c) pronotum dorsal (♂, 100 µm); (d) pronotum dorsal (♀, 100 µm); (e) mesepimeron and metepisternum (♂, 30 µm); (f) hemelytra (♂, 100 µm); (g) pygophore dorsal (♂, 30 µm); (h) abdomen ventral (♀, 100 µm). Scales in brackets, measured in µm. Abbreviations: FS, frontal spine; MS, medial spine; OS, occipital spine; Bu, bucculae; PD, pronotal disc; Co, collum; Pa, paranota; MC, medial carina; LC, lateral carina; PL, posterior lobe; SG, scent gland; R+M, radius and media vein; Cu, cubitus vein; CoA, costal area; ScA, subcostal area; SuA, sutural area; DiA, discoidal area; RP, right paramere; LP, left paramere; Py, Pygophore; SgP, subgenital plate.
FIGURE 13 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 13. Male paramere, dorsal, of seven Australian Lasiacantha species, from the three species groups: (a) L. eremophila; (b) L. aureolus; (c) L. luritja; (d) L. serraseta; (e) L. discordis; (f) L. graminicola. Abbreviations: Ap, apophysis; SL, sensory lobe. Scale = 0.1mm.
FIGURE 1 in Systematics, biogeography and host plant associations of the lace bug genus Lasiacantha Stål in Australia (Insecta: Hemiptera: Heteroptera: Tingidae) 2818
FIGURE 1. Implied weights phylogeny for Australian Lasiacantha Stål, 1873, with nodes numbered (refer to Table 3 for character state changes at nodes), bootstrap values are given as branch supports, and biogeographic area and host plant mapped next to the species name. Map of areas of endemism, redrawn from Crisp et al. (1995). Abbreviations for biogeographic areas as follows: ED = Eastern Desert; EQ = Eastern Queensland; MM = Macleay-McPherson; P = Pilbara; SE = Southeast New South Wales; SW = Southwest Western Australia; TAS = Tasmania; and, WD = Western Desert.
FIGURE 16 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 16. Phylogenetic hypothesis for the species of Rhinusa based on morphological characters only. Characters are weighted using an iterative a posteriori weighting procedure. The diagram is a strict consensus tree derived from 14 shortest trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
FIGURE 19 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 19. Host plant preferences of extant species of Rhinusa and inferred evolutionary transitions of host associations mapped onto the strictly morphological equal-weights topology (cf. Fig. 14). The reconstruction suggests that Antirrhineae (Plantaginaceae) are the ancestral hosts for Rhinusa and that the switch to Scrophulariaceae evolved in a single step in the lineage of the R. bipustulata + R. tetra groups. A = Antirrhinum; C = Chaenorhinum; K = Kickxia; L = Linaria; Lo = Lotus L.; M = Misopates; P = Plantago L.; Sc = Scrophularia; Sa = Salix L.; V = Verbascum; Vn = Veronica L.
FIGURES 6–13 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURES 6–13. (6) Rhinusa collina, aedeagus in dorsal view; (7) R. collina, aedeagus in lateral view; (8) R. uncipes, aedeagus in lateral view; (9) R. vestita, aedeagus in dorsal view; (10) R. littorea, spiculum ventrale; (11) R. brondelii, spermatheca; (12) R. linariae, spermatheca; (13) R. asellus, spermatheca. Numbers indicate characters and states. Not drawn to the same scale.
FIGURE 17 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 17. One of 46 shortest trees for the species of Rhinusa derived from parsimony analysis of the morphological equal-weights matrix. Character (above) and state (below) distributions are mapped under unambiguous transformation. Black squares indicate unique transformed characters whereas white circles represent homoplasious characters.
FIGURE 15 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 15. Phylogenetic hypothesis for the species of Rhinusa based on the combined morphological and host plant information. All characters are equally weighted. The diagram is a strict consensus tree derived from 3128 optimal trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
FIGURE 14 in Phylogeny of the weevil genus Rhinusa Stephens based on adult morphological characters and host plant information (Coleoptera: Curculionidae)
FIGURE 14. Phylogenetic hypothesis for the species of Rhinusa based on morphological characters only. All characters are equally weighted. The diagram is a strict consensus tree derived from 46 optimal trees under the parsimony criterion. Numbers at the internodes show bootstrap support percentages (1000 pseudoreplicates).
Figs. 1–5 in Pentispa sallaei (Baly) (Coleoptera: Chrysomelidae: Cassidinae: Chalepini) Established in Florida, USA, with the First Report of a Host Plant
Figs. 1–5. Adult Pentispa sallaei and damage to leaves of Malpighia emarginata. 1) Dorsal habitus of P. sallaei, specimen from Davie, Florida; 2) Dorsal (a), ventral (b), and lateral (c) views, specimen from Ca~ non de Lobos, Morelos, Mexico; 3) Adults of P. sallaei and associated leaf damage, Southwest Ranches, Florida; 4) Leaf scarring by adult P. sallaei; 5) Larval leaf mines of P. sallaei.
Figs 1–2 in New records and host plants of Symphyta (Hymenoptera) for Germany, Berlin and Brandenburg
Figs 1–2: Dineura parcivalvis, ♀. 1: apical flagellomeres. 2: coloration. – Figs 3–4: Dineura testaceipes, ♀. 3: apical flagellomeres. 4: coloration. – Figs 5–6: Euura plicadaphnoides, galls (arrowed) on leaves of Salix daphnoides. – Figs 7–8: Rhogogaster chambersi, larva on Linum usitatissimum. – Fig. 9: Tenthredo ignobilis, larva on Sedum telephium. – Fig. 10: Pamphilius inanitus, leaf rolls on Rosa sp.
Figs. 7–8. Eutaenia corbetti. 7 in Redescriptions ofImantocera penicillataHope andEutaenia corbettiGahan (Coleoptera: Cerambycidae), with Records of Host Plants from India
Figs. 7–8. Eutaenia corbetti. 7) Dorsal habitus: a) Male, b) Female; 8) Ventral habitus: a) Male, b) Female.
Figs. 9–10. Eutaenia corbetti, abdomen. 9 in Redescriptions ofImantocera penicillataHope andEutaenia corbettiGahan (Coleoptera: Cerambycidae), with Records of Host Plants from India
Figs. 9–10. Eutaenia corbetti, abdomen. 9) Posterior part, lateral view: a) Male, b) Female; 10) Terminal segments: a) Male, b) Female.
Figs. 4–5. Imantocera penicillata, antenna. 4 in Redescriptions ofImantocera penicillataHope andEutaenia corbettiGahan (Coleoptera: Cerambycidae), with Records of Host Plants from India
Figs. 4–5. Imantocera penicillata, antenna. 4) Fourth segment; 5) Terminal segments (8-11): a) Male, b) Female.
Fig. 4 in Larval Host Plant Records, Distributional Records, and Biological Information on North American Cerambycidae (Coleoptera)
Fig. 4. Larval habits of Necydalis mellita. A) Old log utilized by N. mellita, B) Ellipsoidal exit tunnel at the surface, C) Head-down pupa in the pupal cell, D) More or less circular emergence hole gnawed by the emerging adult.
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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)
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.