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FIGURE 4. Oedichirus damingensis. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX in Redescription of Oedichirus flammeus Koch, and description of two new Oedichirus species from China (Coleoptera, Staphylinidae, Paederinae, Pinophilini)
FIGURE 4. Oedichirus damingensis. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX, ventral. Scales: A–I 0.5 mm.
FIGURE 3. Oedichirus flammeus. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX in Redescription of Oedichirus flammeus Koch, and description of two new Oedichirus species from China (Coleoptera, Staphylinidae, Paederinae, Pinophilini)
FIGURE 3. Oedichirus flammeus. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX, ventral. Scales: A–I 0.5 mm.
FIGURE 5. Oedichirus pengzhongi. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX in Redescription of Oedichirus flammeus Koch, and description of two new Oedichirus species from China (Coleoptera, Staphylinidae, Paederinae, Pinophilini)
FIGURE 5. Oedichirus pengzhongi. A aedeagus, left lateral B aedeagus, ventral C aedeagus, right lateral D male sternite VII E male sternite VIII F male tergite VIII G male tergite IX H male sternite IX I female segment IX, ventral. Scales: A–I 0.5 mm.
FIGURE 2. Mimogonellus dreybrodti, male. A. Protibia. B. Mesotibia. C. Tergites IX–X. D. Sternite VIII. E. Sternite IX. F–G in Mimogonellus dreybrodti sp. n., a new cave-inhabiting Osoriinae from Laos (Coleoptera: Staphylinidae)
FIGURE 2. Mimogonellus dreybrodti, male. A. Protibia. B. Mesotibia. C. Tergites IX–X. D. Sternite VIII. E. Sternite IX. F–G. Aedeagus, in lateral (F), and dorsal (G) views. Scale bars: 0.3 mm in A–D; 0.2 mm in E–G.
F I G U R E 3 in Cutting the Gordian Knot: Phylogenetic and ecological diversification of the Mesalina brevirostris species complex (Squamata, Lacertidae)
F I G U R E 3 Results of 100 replicates of niche identity (above diagonal) and background tests (below diagonal). Observed niche overlap (Schoener's D) is given in the upper right corner of each graph and is also indicated by red bars. The identity tests show that the niches are significantly different from models based on pooled and randomly resampled records for all species pairs except M. bernoullii—M. microlepis. Scales of the x axis of all identity tests are 0–1. Background tests show two comparisons, one of the occurrences of the species in row against the background for the species in column (black bars and p values), the other of occurrences of the species in column compared with the background for the species in row (grey bars and p values). Note that the scale of the x axes differs in the background graphs. Asterisks by p values denote significant results. Names of taxa correspond to changes proposed in this study
F I G U R E 2 in Cutting the Gordian Knot: Phylogenetic and ecological diversification of the Mesalina brevirostris species complex (Squamata, Lacertidae)
F I G U R E 2 (a) Species-tree cloudogram (grey shading) superimposed with the MCC tree (black) inferred using three mtDNA and three nDNA gene fragments. White dots mark nodes with pp support ≥.95. Mean ages are indicated for supported nodes in white rectangles by nodes together with 95% HPD (also indicated as blue bars). Higher colour densities in the cloudogram represent higher levels of certainty that given clade exists. The depicted individuals are as follows: Mesalina microlepis from Hermel, Lebanon (voucher NMP 74214/2); M. saudiarabica sp. n. from Mahazat as-Sayd, Saudi Arabia (photovoucher NMP6F 29-30, not sampled); M. bernoullii from Chosrevi, Iran (unvouchered, sample I02), M. brevirostris from the Marawah Island, UAE (unvouchered, not sampled). Specimens are not to scale. (b) Allele networks of the three nDNA gene fragments analysed. Circle sizes are proportional to the number of alleles, lines represent mutational steps. Names of taxa correspond to changes proposed in this study
F I G U R E 1 in Cutting the Gordian Knot: Phylogenetic and ecological diversification of the Mesalina brevirostris species complex (Squamata, Lacertidae)
F I G U R E 1 (a) Map of the Arabian Peninsula showing localities of material examined in this study. Large circles indicate material used for the phylogenetic analyses; smaller paler circles indicate additional records used for the SDM. Dashed line delimits the background for developing the models. Potential distributions of Mesalina bernoullii, M. brevirostris, M. microlepis and M. saudiarabica sp. n. based on the MTSS threshold are shown in corresponding colours. The green and blue striped region shows the overlap of the potential distributions of M. bernoullii and M. microlepis. (b) Plot of the environmental space of the study background and its respective parts occupied by the four species as identified by the PCA. The first two principal components and their contributions to general variation are shown. The species environmental spaces are based on their modelled distributions. Names of taxa correspond to changes proposed in this study
FIGURE 97. Glenognatha heleios. A–D, male left palp. A, ventral. B, dorsal. C, retrolateral. D, anterior. E–G in Revision and phylogenetic analysis of the orb-weaving spider genus Glenognatha Simon, 1887 (Araneae, Tetragnathidae)
FIGURE 97. Glenognatha heleios. A–D, male left palp. A, ventral. B, dorsal. C, retrolateral. D, anterior. E–G, embolus and conductor. E, ventral. F, dorsal. G, retrolateral. H, paracymbium (arrow, paracymbium basal apophysis). Scale bars, 100 µm (A– D, H), 20 µm (E–G). C: conductor. CB: cymbium. CRa: conductor retrolateral apophysis. E: embolus. EMg: embolic medial groove. P: paracymbium. T: tegulum.
FIGURE 63. Glenognatha globosa. A–D, female genitalia. A, dorsal. B, ventral. C, lateral. D, uterus externus distal portion. E–G, female spinnerets. E, ALS. F, PMS. G, PLS. H–I, female tracheal system. H, dorsal. I in Revision and phylogenetic analysis of the orb-weaving spider genus Glenognatha Simon, 1887 (Araneae, Tetragnathidae)
FIGURE 63. Glenognatha globosa. A–D, female genitalia. A, dorsal. B, ventral. C, lateral. D, uterus externus distal portion. E–G, female spinnerets. E, ALS. F, PMS. G, PLS. H–I, female tracheal system. H, dorsal. I, median and lateral trunks. Scale bars, 100 µm (A–C, H–I), 10 µm (D–G). AC: aciniform gland spigots. AG: aggregate gland spigots. FL: flagelliform gland spigot. LT: lateral trunk. MAP: major ampullate gland spigot. mAP: minor ampullate gland spigot. MC: membranous chamber. MT: median trunk. PI: piriform gland spigots. UE: uterus externus.
FIGURE 55. Glenognatha gaujoni. A, male tracheal spiracle. B, epiandrous fusules. C–F, male spinnerets. C, ventral. D, ALS. E, PMS. F, PLS. G–I, male left chelicerae. G, anterior. H in Revision and phylogenetic analysis of the orb-weaving spider genus Glenognatha Simon, 1887 (Araneae, Tetragnathidae)
FIGURE 55. Glenognatha gaujoni. A, male tracheal spiracle. B, epiandrous fusules. C–F, male spinnerets. C, ventral. D, ALS. E, PMS. F, PLS. G–I, male left chelicerae. G, anterior. H, posterior (box defines area of figure I). I, cheliceral setae. Scale bars, 100 µm (A, C, G–H), 10 µm (B, D–F, I). AC: aciniform gland spigots. AG: aggregate gland spigots. CFO: cheliceral fang outgrowth. FL: flagelliform gland spigot. MAP: major ampullate gland spigot. mAP: minor ampullate gland spigot. PI: piriform gland spigots. Ret: retromarginal tooth.
FIGURE 43. Glenognatha dentata. A, male abdomen. B, epiandrous fusules. C, posterior tracheal spiracle. D–F, male left palp. D, ventral. E, ventroretrolateral. F, dorsoretrolateral. G–I in Revision and phylogenetic analysis of the orb-weaving spider genus Glenognatha Simon, 1887 (Araneae, Tetragnathidae)
FIGURE 43. Glenognatha dentata. A, male abdomen. B, epiandrous fusules. C, posterior tracheal spiracle. D–F, male left palp. D, ventral. E, ventroretrolateral. F, dorsoretrolateral. G–I, embolus and conductor. G, ventral. H, dorsal. I, apical. J, cymbium/paracymbium articulation. Scale bars, 100 µm (A, D–F), 20 µm (B–C, G–J). C: conductor. CB: cymbium. CRa: conductor retrolateral apophysis. E: embolus. EMg: embolic medial groove. P: paracymbium. T: tegulum. TS: posterior tracheal spiracle.
Few juveniles or males were collected. Only four males from groups 7, 8, 9, and 11, all in clade D, were included in the dataset. The male in Fig. 13E–H conforms to the general morphological description of males in Lobocriconema with an undifferentiated labial region, the absence of a stylet, a degenerate pharyngeal region, a FIGURE 7. SEM images of specimens representing clades D (A–H) and B (I). NID numbers are associated with unique specimens, all are females except image C. A) Lobocriconema sp., face view with conspicuous labial disc surrounded by irregular labial structure, Nine-Mile Prairie, Nebraska, NID 4533. B) Lobocriconema sp., face view lacking submedian lobes and displaying subcuticular labial structure, Big Thicket National Preserve, Texas, NID 4560. C) Lobocriconema sp., juvenile, head with visible submedian lobes, body scales with fine terminal projections, Spring Creek Prairie, Nebraska, NID 4514. D) Lobocriconema sp., face view lacking submedian lobes and displaying subcuticular labial structure, Nine-Mile Prairie, Nebraska, NID 4527 E) Lobocriconema sp., cephalic profile with protruding stylet, Nine-Mile Prairie, Nebraska, NID 4529. F) Lobocriconema sp., head profile lacking submedian lobes, Tunica Hills, Louisiana, NID 4574. G) Lobocriconema sp., tail with closed vulva, Nine-Mile Prairie, Nebraska, NID 4533. H) Lobocriconema sp., tail with closed vulva, Nine-Mile Prairie, Nebraska, NID 4526. I) Lobocriconema sp., face view lacking submedian lobes, Great Smoky Mountains National Park, Purchase Knob, NID 4570. in Species discovery and diversity in Lobocriconema (Criconematidae: Nematoda) and related plant-parasitic nematodes from North American ecoregions
Few juveniles or males were collected. Only four males from groups 7, 8, 9, and 11, all in clade D, were included in the dataset. The male in Fig. 13E–H conforms to the general morphological description of males in Lobocriconema with an undifferentiated labial region, the absence of a stylet, a degenerate pharyngeal region, a FIGURE 7. SEM images of specimens representing clades D (A–H) and B (I). NID numbers are associated with unique specimens, all are females except image C. A) Lobocriconema sp., face view with conspicuous labial disc surrounded by irregular labial structure, Nine-Mile Prairie, Nebraska, NID 4533. B) Lobocriconema sp., face view lacking submedian lobes and displaying subcuticular labial structure, Big Thicket National Preserve, Texas, NID 4560. C) Lobocriconema sp., juvenile, head with visible submedian lobes, body scales with fine terminal projections, Spring Creek Prairie, Nebraska, NID 4514. D) Lobocriconema sp., face view lacking submedian lobes and displaying subcuticular labial structure, Nine-Mile Prairie, Nebraska, NID 4527 E) Lobocriconema sp., cephalic profile with protruding stylet, Nine-Mile Prairie, Nebraska, NID 4529. F) Lobocriconema sp., head profile lacking submedian lobes, Tunica Hills, Louisiana, NID 4574. G) Lobocriconema sp., tail with closed vulva, Nine-Mile Prairie, Nebraska, NID 4533. H) Lobocriconema sp., tail with closed vulva, Nine-Mile Prairie, Nebraska, NID 4526. I) Lobocriconema sp., face view lacking submedian lobes, Great Smoky Mountains National Park, Purchase Knob, NID 4570.
FIGURE3. Taxonomic illustration of Paraputo blackmani Joshi sp.n., adult female. A. Body overview; B. Antenna; C. Anal ring; D. Tarsal and claw digitules, claw without a denticle; E. Coxa with translucent pores; F. Trilocular pores; G. Anal lobe cerarius (C18); H. Penultimate cerarius (C17); I. Antepenultimate cerarius (C); J. Setae at ocular position (C3); K. Setae at 16 frontal position (C1); L. Dorsal seta; M. Discoidal pore; N. Ventral setae; O. Multilocular disc-pore; P. Oral collar tubular ducts of two sizes. in --A--new--species--of--Paraputo--Laing--1929--(Hemiptera:--Coccomorpha:-- Pseudococcidae)--from--India
FIGURE3. Taxonomic illustration of Paraputo blackmani Joshi sp.n., adult female. A. Body overview; B. Antenna; C. Anal ring; D. Tarsal and claw digitules, claw without a denticle; E. Coxa with translucent pores; F. Trilocular pores; G. Anal lobe cerarius (C18); H. Penultimate cerarius (C17); I. Antepenultimate cerarius (C); J. Setae at ocular position (C3); K. Setae at 16 frontal position (C1); L. Dorsal seta; M. Discoidal pore; N. Ventral setae; O. Multilocular disc-pore; P. Oral collar tubular ducts of two sizes.
Figure S2 Extra- and intra-oral photographs of the patient at 5 years after treatment. Frontal view and smile(A,B), right profile(C), 45 profile and smile(D,E), right lateral occlusion(F), frontal occlusion(G), left lateral occlusion(H), upper arch(I), and lower arch(J).))
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FIGURA 2 in Frugivoria E Dispersão De Sementes Pelo Lagarto Teiú Tupinambis Merianae (Reptilia: Teiidae) E R C M G Abstract
FIGURA 2. Velocidade de germinação das sementes de A. Cereus peruvianus; B. Genipa americana; C. Solanum viarum; e D. Eugenia uniflora. (!) tratamento, (") controle.
FIGURE 11 in A Comparative Study Of The Ovaries In Some Brazilian Bees (Hymenoptera; Apoidea) G F M J E S Abstract
FIGURE 11. Relationship between the ovariole size and intertegular distance of bees (Linear regression). Data on Meliponini and Apini were excluded. Numbers regards to number of the species listed in the Table 1.
FIGURE 8 in A Comparative Study Of The Ovaries In Some Brazilian Bees (Hymenoptera; Apoidea) G F M J E S Abstract
FIGURE 8: Oocyte-nurse cell complex in the posterior region of the germarium of Melipona bicolor. Notice the presence of accessory nuclei (a) into the oocyte cytoplasm. The nurse cells present a linear arrangement and they are connected with the oocyte; tp: tunica propria; (o): oocyte; (on): oocyte nucleus; (N): nurse cell; (n): nurse cell nucleus. Bar = 10 µm.
FIGURE 5 in A Comparative Study Of The Ovaries In Some Brazilian Bees (Hymenoptera; Apoidea) G F M J E S Abstract
FIGURE 5. Longitudinal section of mature oocyte of Pseudaugochlora graminea with accessory nuclei placed in the peripheral oocyte region. The follicular cells are flattened; E: follicular epithelium; a: accessory nucleus; en: follicular epithelial cell nucleus. Bar = 10 µm.
FIGURE 3 in A Comparative Study Of The Ovaries In Some Brazilian Bees (Hymenoptera; Apoidea) G F M J E S Abstract
FIGURE 3. Longitudinal section of a follicle of Epicharis affinis, observed under phase contrast microscope, Methyl Green-Pyronin stained, showing one vitellogenic growing oocyte (o) that have the nucleus (on) and the accessory nuclei (a) placed in the peripheral region of the cytoplasm; E: follicular epithelium covering the oocyte chamber; e: follicular layer of the nutritive chamber; m: muscle; N: nurse cells; pm: peritoneal membrane; T: trachea; tp: tunica propria. Bar = 10 µm.
FIGURE 7 in A Comparative Study Of The Ovaries In Some Brazilian Bees (Hymenoptera; Apoidea) G F M J E S Abstract
FIGURE 7. Longitudinal section of the ovariole of Epicharis affinis obeserved under phase contrast microscope, Bromophenol Blue stained, showing the follicular epithelium (E) of two successive follicles with different developmental stages. Covering the mature oocyte, the follicular projection (p) that penetrate the corion (c). Notice that the epithelium cover the vitellogenic growing oocyte (o) without projections and with cells presenting different staining tonalities (*); en: follicular epithelial cell nucleus; (tp) tunica propria; (pm) peritoneal membrane; en: follicular epithelial cell nucleus. Bar = 10 µm.
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Allen Brain Atlas
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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.
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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.
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