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2,477 results for “type species”
Fig. 1. Attemsostreptus costatus Verhoeff, 1941, type material ZSM. A in Revision of the genus Attemsostreptus Verhoeff, 1941 with description of a new species from Tanzania and notes on the tribe Trachystreptini Cook, 1896 (Spirostreptida, Diplopoda)
Fig. 1. Attemsostreptus costatus Verhoeff, 1941, type material ZSM. A. Gonopods, anterior view. Aa. Overview of slide A 200427814, containing the gonopods. B. Slide A20042785, left gonopod, anterior view. C. Telopodite. D–G. Overview of Verhoeff's slides (ZSM) A20042785, A20042783, A20042784, A20042785. For abbreviations, see Material and methods. Aa, D–G photo credit J. Spelda. Scale bars: A–C = 0.5 mm; Aa, D–G: images not to scale.
Fig. 3. Pleioplectron simplex Hutton, 1896, type specimens. A–C in Diversity and distribution of Pleioplectron Hutton cave wētā (Orthoptera: Rhaphidophoridae: Macropathinae), with the synonymy of Weta Chopard and the description of seven new species
Fig. 3. Pleioplectron simplex Hutton, 1896, type specimens. A–C. Lectotype, ♂ (CMNZ 000280). A. Lateral view. B. Terminalia, dorsal view. C. Terminalia, ventral view. D–E. Paratype of Pleioplectron pectinatum Hutton, 1896, ♂ (CMNZ 000266a). D. Lateral view. E. Terminalia, dorsal view. F. Holotype of Pleioplectron pectinatum Hutton, 1896, ♂ (CMNZ 000266), terminalia, ventral view. Scale bar = 2 mm (applies to B–C, E–F only).
Figs. 1–9. Stenosigma humerale holotype female. 1 in On the type series of Stenosigma humerale Giordani Soika with the description of a new species (Hymenoptera, Vespidae, Eumeninae)
Figs. 1–9. Stenosigma humerale holotype female. 1, habitus; 2, lower head in lateral view; 3, lateral surface of pronotum in lateral view; 4, mesepisternum; 5, mesoscutum and scutellum in dorsal view; 6, metanotum in dorsal view; 7, T1 in dorsal view; 8, T1 in lateral view; 9, S1 in ventral view. Scale bars for Fig. 1 = 2 mm, Figs. 2–4 = 0.5 mm, and Figs. 5–9 = 1 mm.
Figs. 10–12 in On the type series of Stenosigma humerale Giordani Soika with the description of a new species (Hymenoptera, Vespidae, Eumeninae)
Figs. 10–12. Labels attached to the putative female paratype of S. humerale, presently attributed to a new species.
Figs. 13–21. Stenosigma quechua holotype female. 13 in On the type series of Stenosigma humerale Giordani Soika with the description of a new species (Hymenoptera, Vespidae, Eumeninae)
Figs. 13–21. Stenosigma quechua holotype female. 13, habitus; 14, lower head in lateral view; 15, lateral surface of pronotum in lateral view; 16, mesepisternum; 17, mesoscutum and scutellum in dorsal view; 18, metanotum in dorsal view; 19, T1 in dorsal view; 20, T1 in lateral view; 21, S1 in ventral view. Scale bars for Fig. 13 = 2 mm, Figs. 14–17 = 0.5 mm, and Figs. 18–21 = 1 mm.
Figure. The phylogenetic tree showing the relationship among Brevibacillus parabrevis strains SA2.2 and TJ2.3, Bacillus licheniformis MG4.2, and their phylogenetically closest type strains. The GenBank accession numbers of the type strains and studied strains are shown following species names. Distance matrix was calculated by Kimura's 2-parameter model. The scale bar indicates 0.02 substitutions per nucleotide position. Alicyclobacillus pohliae AJ564766 served as an out-group. in Distribution of extracellular enzyme-producing bacteria in the digestive tracts of 4 brackish water fish species
Figure. The phylogenetic tree showing the relationship among Brevibacillus parabrevis strains SA2.2 and TJ2.3, Bacillus licheniformis MG4.2, and their phylogenetically closest type strains. The GenBank accession numbers of the type strains and studied strains are shown following species names. Distance matrix was calculated by Kimura's 2-parameter model. The scale bar indicates 0.02 substitutions per nucleotide position. Alicyclobacillus pohliae AJ564766 served as an out-group.
Figure 1. DNA extraction with two different protocols from different noninvasive samples. Lines 1, 3, 5 in Evaluation of methods for molecular sex-typing of three heron species from different DNA sources
Figure 1. DNA extraction with two different protocols from different noninvasive samples. Lines 1, 3, 5, and 7: DNA extraction with commercial kit; Lines 2, 4, 6, and 8: DNA extracted with modified standard protocol. Lines 1–2: eggshells (Grey Heron); lines 3–4: eggshell swabs (Grey Heron); lines 5–6: pin feathers (Purple Heron); lines 7–8: contour feathers (Great Egret); 9: negative control; M: molecular marker.
Figure 2. Heron sex-typing with 2550F in Evaluation of methods for molecular sex-typing of three heron species from different DNA sources
Figure 2. Heron sex-typing with 2550F/2718R primers. Lines 1–7: Purple Heron nestlings, males (600 bp for Z chromosome); 8–10: Great Egret nestlings, females (600 bp for Z chromosome and 450 bp for W chromosome); 11: negative control; M: molecular marker.
Figure 3b in Species diversity and community structure of zooplankton in three different types of water body within the Sakarya River Basin, Turkey
Figure 3b. CCA biplot diagram with three lakes (all seasons and stations) and 81 species (Rot: Rotifera, Cla: Cladocera, Cop: Copepoda, species abbreviations are listed in Table 2).
Figure 1 in Species diversity and community structure of zooplankton in three different types of water body within the Sakarya River Basin, Turkey
Figure 1. Species richness, evenness, and diversity boxplots in each lake. The horizontal thick black band represents the median value, and the boxplot margins indicate first and third quartiles.
Figure 2 in Species diversity and community structure of zooplankton in three different types of water body within the Sakarya River Basin, Turkey
Figure 2. nMDS plots between lakes in terms of zooplankton species composition and abundance (a: all zooplankton species, b: rotifers, c: cladocerans.), Triangle: Lake Poyrazlar, Square: Çubuk II Reservoir, Circle: Sorgun Pond.
Figure 3a in Species diversity and community structure of zooplankton in three different types of water body within the Sakarya River Basin, Turkey
Figure 3a. CCA biplot diagram with three lakes (all seasons and stations), and eight environmental variables. For sample abbreviations, first letter indicates water body; s: Sorgun, p: Poyrazlar, c: Çubuk II; letters between 2 and 4 indicate the seasons: spr: spring, sum: summer, win: winter; numerical variables indicate sampling stations.
Figure 2 in The type material of Melipona postica Latreille, the type species of the stingless bee genus Scaptotrigona Moure (Hymenoptera, Apidae)
Figure 2 Lectotype worker of Melipona postica Latreille, 1809, deposited at the Museum für Naturkunde, Berlin, Germany. A. Dorsal habitus. B. Mesosoma and anterior portion of metasoma, dorsal view. C. Posterior portion of mesosoma and metasoma, dorsal view. D. Wings. E. Metasoma, posterodorsal view. F. Specimen labels.
Figure 5 in The type material of Melipona postica Latreille, the type species of the stingless bee genus Scaptotrigona Moure (Hymenoptera, Apidae)
Figure 5 Entrance tubes of natural nests of Scaptotrigona postica. A, Nest found in the campus of the Universidade de Santa Cruz, Ilhéus, Bahia. B, Same, close-up view of entrance tube. C, Nest found in the campus of the Universidade de Santa Cruz, Ilhéus, Bahia. D, Nest found in the Reserva Biológica União, Casimiro de Abreu, Rio de Janeiro. E, Two nests found at same tree in Fazenda Morro do Capim, Sete Barras, São Paulo. F. Same, close-up view of the lower nest entrance.
Figure 4 in The type material of Melipona postica Latreille, the type species of the stingless bee genus Scaptotrigona Moure (Hymenoptera, Apidae)
Figure 4 Holotype worker of Scaptotrigona postica xanthotricha Moure, 1950, deposited at the DZUP collection, Universidade Federal do Paraná, Curitiba, Brazil.A.Lateral habitus. B. Dorsal habitus. C. Head, frontal view. D. Metasoma, posterodorsal view. E. Specimen labels. A-B, C-D, respectively, at same scale.
Figure 3 in The type material of Melipona postica Latreille, the type species of the stingless bee genus Scaptotrigona Moure (Hymenoptera, Apidae)
Figure 3 Paralectotype worker of Melipona postica Latreille, 1809, from the Naturhistorisches Museum, Vienna, Austria. A. Head, frontal view. B. Wings. C. Head and mesosoma, dorsal view. D. Posterior portion of mesosoma and metasoma, dorsal view. E. Mesosoma, laterodorsal view. F. Head, dorsal view. G. Specimen labels; the first paralectotype label should read "Klug, 1808", but by mistake I wrote "Klug, 1807".
Figs 16‒24 in First illustrated description of the male of Diphya macrophthalma, the type species of the genus (Araneae, Tetragnathidae)
Figs 16‒24. Male palp and epigyne of Diphya macrophthalma Nicolet, 1849: 16, 17 terminal part of palp with removed bulb, ventro-retrolateral, retrolateral and dorso-retrolateral; 19‒21 bUlb, dorsal, anterior and prolateral-anterior; 22 epigyne, ventral; 23 epigyne, dorsal; 24 anterior chamber of receptacle with glands (Am, accompanying membrane; Co, conductor; Cd, copulatory ducts; Da, dorso-retrolateral apophysis; Em, embolus; Ef, epigynal furrow; Ev, embolus ventrally; Fo, fovea; Gc, gland cilia; Mp, median plate; Oc, copulatory opening; Pc, central plate; Pd, dorsal part of paracymbium; Pi, pit; Pm, marginal plate. Scale = 0.1 mm if not otherwise indicated.
Figs 9‒15 in First illustrated description of the male of Diphya macrophthalma, the type species of the genus (Araneae, Tetragnathidae)
Figs 9‒15. Male palp of Diphya macrophthalma Nicolet, 1849: 9, whole palp, retrolateral; 10, 11, terminal part of palp, retro-ventral and antero-ventral; 12, same, prolateral; 13, 14 same, anterior and dorsal; 15, terminal part of the bulb, retrolateral (Am, accompanying membrane; Co, conductor; Da, dorso-retrolateral apophysis; Em, embolus; Ev, embolus ventrally; Pd, spine like dorsal part; Tg, tegulum). Scale = 0.2 mm.
Figs 1‒8 in First illustrated description of the male of Diphya macrophthalma, the type species of the genus (Araneae, Tetragnathidae)
Figs 1‒8. Somatic characters of Diphya macrophthalma Nicolet, 1849: 1, 2, female habitus, dorsal; 3, female habitus, ventral; 4, 5, male prosoma, frontal and dorsal; 6, male habitus, dorsal; 7, male prosoma, ventral; 8, female prosoma, ventral. Fig. 2, holotype, made by Tanikawa. Scale = 0.2 mm if not otherwise indicated.
Figs 25‒35. Diphya macrophthalma Nicolet, 1849 in First illustrated description of the male of Diphya macrophthalma, the type species of the genus (Araneae, Tetragnathidae)
Figs 25‒35. Diphya macrophthalma Nicolet, 1849 (Figs 25‒30, 33‒35) and D. rugosa Tullgren, 1902 (Figs 31, 32): 25, 26, 29‒32 epigyne, ventral; 27, 28 epigyne, dorsal; 33 paracymbium and tibia, ventro-retrolateral; 34, male epigastral area showing epiandrous spigots; 35, male spinnerets; 29, 30 holotype; 31, 32 syntype. Figs 30, 32 after TANIKAWA (1995). Figs 29, 31 made by A. Tanikawa (Ap, anterior pockets; Cd, copulatory ducts; Pc, central plate; Pl, mating plug; Pm, marginal plate; Ra, anterior chambers of receptacles; Rp, posterior chambers of receptacles).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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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
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