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Fig. 9. Thalassomysis tattersalli Nouvel, 1942 in The Mysidae (Crustacea, Mysida) of the ANDEEP I-III expeditions to the Antarctic deep sea with the description of twelve new species, establishment of four new genera and with world-wide keys to the species of Erythropinae and Mysidellinae
Fig. 9. Thalassomysis tattersalli Nouvel, 1942, immature female with BL of 10.3 mm (A) and subadult male ≈ 14 mm (B–F). A. Immature female in toto, obliquely lateral. B. Penis, caudal view; dashed lines enhance contours of penis and its setae. C. Ellobiopsid spores settled on third thoracic sternite. D. Fourth pleopod of subadult male, lateral aspect, arrows point to segmental borders. E–F. Fifth (E) and third (F) pleopods of subadult male, mesial aspect. A. Object artificially separated from background.
Fig. 3 in The Mysidae (Crustacea, Mysida) of the ANDEEP I-III expeditions to the Antarctic deep sea with the description of twelve new species, establishment of four new genera and with world-wide keys to the species of Erythropinae and Mysidellinae
Fig. 3. Dactylamblyops benthophilus sp. nov. A–B. Cephalon of paratype, adult male with BL of 19.9 mm, dorsal (A) and ventral (B) views (ZMH 64673). C. Paratype, adult female 25.4 mm long, lateral view (ZMH 64672). D. Holotype, adult male 22.6 mm long, lateral view (ZMH 64669). A–D. Objects artificially separated from background.
Fig. 6 in The Mysidae (Crustacea, Mysida) of the ANDEEP I-III expeditions to the Antarctic deep sea with the description of twelve new species, establishment of four new genera and with world-wide keys to the species of Erythropinae and Mysidellinae
Fig. 6. Gut in Dactylamblyops benthophilus sp. nov., paratypes, adult males with BL of 20.3 mm (A, G: ZMH 64670), 17.0 mm (B–E: ZMH 64674) and subadult male 15 mm (F: ZMH 64678). A. Foregut expanded on slide, ventral view. B–E. Spines of foregut in another specimen. F. Basal portion of telson with anal lobe in loco, lateral view. G. Anal lobe expanded on slide; dorsal aspect of ventral structure focused through the artificially transparent telson. Abbreviations: al = anal lobe; an = anus; di = dorsolateral infolding; hg = hindgut; la = lateralia; mg = midgut; sp = storage space; te = telson. A. Object artificially separated from background.
Fig. 18 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 18. Caribesella gen. nov., diagnostic characters of the head not previously illustrated. Micrograph showing part of the head chaetotaxy: the clypeal tuft of one side (white arrow) and the labrum with no tufts (blue arrow); the frontal tuft of the same side is visible (yellow arrow). Scale bar = 0.1 mm.
Fig. 19 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 19. Caribesella gen. nov., diagnostic characters not previously illustrated, SEM photographs. A. Orbicular scales of dorsal side of the abdomen. B. An indented scale of the dorsal side of the thorax. C. Coxal scales. D. Scales on the apex of the femur. E. Scales and setae on the basal part of the tibia. F. Scales on stylus IX. G. Open anterior trichobothrial area of the pronotum. Scale bars: A = 70 μm; B, G = 50 μm; C = 60 μm; D–E = 90 μm; F = 80 μm.
Fig. 16 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 16. Types of macrochaetae in Lepismatidae Latreille, 1802. A. Micrograph of smooth bifid macrochaetae on the mandible of Allacrotelsa kraepelini (Escherich, 1905). B. Comb of smooth and apically bifid macrochaetae of Anisolepisma aquilonaridum Smith, 2016, SEM photograph. C. Micrograph of feathered macrochaetae on the mandible of Ctenolepisma iranicum Molero, Kahrarian & Gaju, 2016. D. Feathered macrochaetae on the frontal area of the head of Hemitelsella transpectinata (Smith, 2015). E. Design of the smooth macrochetae with a round tip on the mandible of Mormisma peyerimhoffi (Silvestri, 1938), adapted from Silvestri (1938). F. Feathered/plumose macrochaeta of the cerci of Swalepisma mirabile Irish, 1988, SEM photograph. Scale bars: A, C–E = 0.1 mm; B, F = 20 μm.
Fig. 17 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 17. Some examples of variability in the body shape and scale pattern of Lepismatidae. A. Sceletolepisma guadianicum (Mendes, 1992), with body shape subcylindrical and greyish-brown uniform dorsal scales. B. Ctenolepisma nicoletii (Lucas, 1846), with the thorax slightly wider than the abdomen and dorsal scales forming longitudinal stripes. C. Neoasterolepisma curtiseta Mendes, 1988, with a wide thorax, detaching from abdomen base, and yellowish scales. D. Lepismina sp., with short body, wide thorax but not markedly detaching from abdomen base, and hypognathous head, not visible dorsally. Scale bars = 2 mm.
Fig. 15 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 15. Scales on appendages of Lepismatidae Latreille, 1802, variability in shape and distribution pattern. A–B. Fan-shaped scales on antennae of Stylifera gigantea (Escherich, 1905), with light microscope (A) and with SEM (B). C. Tibial scales of Acrotelsella sp. from Australia, similar to those of the femur. D. Tibial scales of Stylifera gigantea from Venezuela. E–F. Scales on cerci of Ctenolepisma lineatum (Fabricius, 1775) (E) and Stylifera gigantea (F). Scale bars: A, E–F = 0.1 mm; B, D = 0.2 mm; C = 0.5 mm.
Fig. 14 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 14. Body scales of Lepismatidae Latreille, 1802, variability. A. Dorsal scales of Ctenolepisma rothschildi Silvestri, 1907, showing heterogeneity of sizes and spacing of ribs. B. Dorsal scales of Heterolepisma sclerophyllum Smith, 2014, showing more homogeneous scales with dense ribs. Scale bars indicated in the photographs: A = 10 μm; B = 100 μm.
Fig. 13 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 13. Ovipositor types in Lepismatidae Latreille, 1802. A. Primary ovipositor of Ctenolepisma rothschildi Silvestri, 1907, SEM photograph. B–C. Secondary ovipositor of Caribesella impudica (Escherich, 1905) comb. nov., SEM photograph (B) and micrograph (C). Scale bars: A = 10 μm; B = 90 μm; C = 0.1 mm.
Fig. 12 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 12. Paramera of Lepismatidae Latreille, 1802. A. Tubuliform paramere of Acrotelsa collaris (Fabricius, 1793). B. Big swollen paramere of Lepisma saccharinum Linnaeus, 1758, larger than the inner process of coxite IX and with glandular area. C. Medium-sized to small paramere of Neoasterolepisma hespericum Molero-Baltanás, Bach de Roca & Gaju-Ricart, 1997, with a small glandular area. D. Pseudoarticulated paramere with glandular area of Allacrotelsa kraepelini (Escherich, 1905). E. Pseudoarticulated paramere of Visma brigalowsum Smith, Mitchell & Molero-Baltanás 2021. F. A detail of a similar pseudoarticulated paramere, of Visma bingara Smith, Mitchell & Molero-Baltanás 2021. Scale bars = 0.1 mm.
Fig. 11 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 11. Shape and chaetotaxy of the urotergite X (last abdominal tergite) of Lepismatidae Latreille, 1802, variability. A. Caribesella impudica (Escherich, 1905) comb. nov., adapted from Wygodzinsky (1959a). B. Qantelsella louisae Smith, 2015, from Smith (2015). C. Stylifera gigantea (Escherich, 1905), from Irish (1988c). D. Acrotelsella parlevar Smith 2016, from Smith (2016b). E. Hemitelsella clarksonorum Smith, 2016, from Smith (2016b). F. Hemitelsella hortorum Smith & Mitchell, 2021, from Smith & Mitchell (2021). G. Thermobia vallaris Irish, 1988, from Irish (1988b). H. Thermobia domestica (Packard, 1873), from Irish (1988b). I. Sceletolepisma sagartianum (Molero, Kahrarian & Gaju, 2016), from Kahrarian et al. (2016). J. Hyperlepisma patrizii Silvestri, 1932, from Silvestri (1932). K. Nebkhalepisma australe (Wygodzinsky, 1959), from Wygodzinsky (1959b). L. Hyperlepisma arabiense Irish, 1991, from Irish (1991). M. Ornatilepisma horni Irish, 1988, from Irish (1988a). N. Swalepisma mirabile Irish, 1988, from Irish & Mendes (1988). O. Sceletolepisma occidentale (Irish, 1987), from Irish (1987).
Fig. 10 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 10. Praetarsal claws in Lepismatidae Latreille, 1802, SEM photographs. A. Praetarsus of Ctenolepisma nicoletii (Lucas, 1846), showing lateral claws with smooth base and finely striated tegument. B. Pretarsal claw of Caribesella impudica (Escherich, 1905) comb. nov., with microtrichia, and the empodium with striated tegument. Scale bars: A = 100 μm; B = 50 μm.
Fig. 9 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 9. Chaetotaxy of coxae in Lepismatidae Latreille, 1802, micrographs of the external margin of the coxa. A. Caribesella impudica (Escherich, 1905) comb. nov., showing discrete combs of few macrochaetae. B. Neoasterolepisma curtiseta Mendes, 1988, showing isolated macrochaetae inside a row of setulae. C. Ctenolepisma nicoletii (Lucas, 1846), with an irregular row of macrochaetae not clearly arranged in combs. Scale bars: A, C = 0.1 mm; B = 50 μm.
Fig. 8 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 8. Thoracic sternites in Lepismatidae Latreille, 1802. A. Mesosternal plate of Anisolepisma sp., adapted from Smith (2016a). B–D. Thoracic sternites (prosternum, mesosternum and metasternum, respectively) of a species of Ctenolepismatinae Mendes, 1991, Sceletolepisma rodriguezi (Mendes, Molero-Baltanás, Bach de Roca & Gaju-Ricart, 1993) that cover the base of coxae. Scale bars = 0.1 mm.
Fig. 2 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 2. Specialized sensilla of the antennae of Lepismatidae Latreille, 1802, adapted from Mendes (1986a). A. Silvestri's sensillum (basiconic type F following Adel's terminology). B. Bidigitate. C. Asteriform. D. Asteriform with annulated tegument. E. Poculiform. F. SEM photograph of a poculiform sensillum in Acrotelsella transpectinata Smith, 2016. Scale bars: A–E = 5 μm; F = 0.2 mm.
Fig. 5 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 5. Chaetotaxy of thoracic nota of Lepismatidae Latreille, 1802. A. Pronotum with setal collar (sc) of Psammolepisma schultzei (Silvestri, 1908), with lateral combs of macrochaetae (lc). Adapted from Irish (1988). Abbreviations: plc = posterolateral comb of macrochaetae, in this case inserted in a very lateral position of the posterior margin; pt = posterior trichobothrium, associated to the last lateral comb (N); the anterior trichobothrium is associated with the antepenultimate lateral comb (N–2). B. Pronotum with bare anterior margin of Neoasterolepisma balcanicum (Stach, 1922), without lateral combs of macrochaetae, only marginal setae (ms). Adapted from Molero-Baltanás et al. (1997). Abbreviations: ata = anterior open trichobothrial areas (the posterior ones are also open in this genus); ps = setulae associated with the posterior margin (in species of Tricholepisma these setae are transformed into macrochaetae: bigger and bifid apically). C. Micrograph of the left anterolateral corner of the pronotum of Allacrotelsa kraepelini, with 1+1 anterolateral groups of macrochaetae, marked with an arrow (and the remaining anterior margin bare). Scale bars = 0.2 mm.
Fig. 7. Trichobothrial areas, SEM photographs. A in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 7. Trichobothrial areas, SEM photographs. A. Open trichobothrial areas of the pronotum of Sceletolepisma guadianicum (Mendes, 1992); the anterior area is visible in the upper part of the photo, and the posterior area is placed in the lower part. B. Closed trichobothrial area of Caribesella impudica (Escherich, 1905) comb. nov. (formerly Acrotelsella impudica). Scale bars: A = 0.2 mm; B = 50 μm.
Fig. 1 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 1. Chaetotaxy of the head in Lepismatidae Latreille, 1802. A. Frontal view of the head of Lepismina sp., showing frontal tufts of macrochaetae. B. Lateral view of the head of Allacrotelsa kraepelini (Escherich, 1905), showing tufts of macrochaetae on the head and on the anterolateral corner of the pronotum. C. Ctenolepisma ciliatum (Dufour, 1831). D. Lepisma baetica Molero-Baltanás, Gaju-Ricart, Bach de Roca & Mendes, 1994. E. Hyperlepisma acinacis Irish, 1991. Images C–D adapted from Molero-Baltanás et al. (2010, 1994) and E from Irish (1991); in these illustrations, most macrochaetae are represented only by their insertions. Scale bars = 0.1 mm.
Fig. 6 in New insights in the taxonomy of Lepismatidae (Insecta, Zygentoma) with an updated key to genera and future challenges
Fig. 6. Bristle-combs in Lepismatidae Latreille, 1802, SEM photographs. A. Ventral comb of macrochaetae of Ctenolepisma nicoletii (Lucas, 1846), where these are detached and only insertions are visible. B. Urosternal comb with macrochaetae not detached (feathered or plumose), from Acrotelsella sp. (probably A. parlevar Smith, 2016). Scale bars = 0.1 mm.
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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.