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FIGURES 3–5 in Phase-contrast synchrotron microtomography reveals the internal morphology of a new fossil species of the Corticaria-sylvicola - group (Coleoptera: Latridiidae)
FIGURES 3–5. Corticaria amberica sp. nov., holotype "017" [ACAB], phase-contrast synchrotron microtomography renderings (BESSY II, Helmholtz-Zentrum, Berlin): 3—habitus, dorsal, ventral and lateral views; 4—location of aedeagus inside abdomen; 5—aedeagus, lateral and ventral views.
FIGURES 6–9 in Phase-contrast synchrotron microtomography reveals the internal morphology of a new fossil species of the Corticaria-sylvicola - group (Coleoptera: Latridiidae)
FIGURES 6–9. Corticaria amberica sp. nov., paratypes: 6—habitus, dorsal view, paratype "0024/2000" [WRUE]; 7— habitus, dorso-frontal view, paratype "612" [GPIH]; 8—habitus, ventral view, paratype "8216" [GPIH]; 9—habitus, dorsal view, paratype "8059" [HPR].
FIGURE 3 in The taxonomic placement of three fossil Fundulus species and the timing of divergence within the North American topminnows (Teleostei: Fundulidae)
FIGURE 3. Tip calibrated fundulid phylogeny derived from the BEAST analysis. Numbers above nodes are estimated mean ages subtended by lines indicating 95% confidence intervals. Branches subtending nodes not present in the maximum likelihood analysis are depicted as gray and do not include age estimates. Nodes with asterisks (*) have posterior probabilities of 95% or greater. Nodes with dots () have posterior probabilities of 90%–95%. Subgenera within Fundulus are indicated by shaded bars. The outgroup, Profundulus guatemalensis, is not depicted.
FIGURE 2 in The taxonomic placement of three fossil Fundulus species and the timing of divergence within the North American topminnows (Teleostei: Fundulidae)
FIGURE 2. Cyprinodontoid phylogeny derived from the maximum likelihood analysis. Nodes with asterisks (*) were present in 95% or greater of bootstrap replicates. Nodes with dots () were present in 60%–94% of bootstrap replicates. Nodes present in fewer than 60% of bootstrap replicates not indicated with a symbol. Alternating outgroup families or subfamilies are shaded to increase clarity. Subgenera within Fundulus are indicated by shading. Outgroup taxa used to root the phylogeny, Kryptolebias marmoratus and Aplocheilus panchax, are not depicted.
FIGURE 4 in The taxonomic placement of three fossil Fundulus species and the timing of divergence within the North American topminnows (Teleostei: Fundulidae)
FIGURE 4. Distribution of the genus Fundulus. Fossil localities are indicated by daggers (†). The distribution of subgenus Fundulus is depicted with gray horizontal hatching. The distribution of subgenus Plancterus is outlined by a dotted line and indicated in yellow. The distribution of subgenus Zygonectes is depicted with solid blue and the distribution of Wileyichthys is indicated with solid red.
FIGURE 1 in The taxonomic placement of three fossil Fundulus species and the timing of divergence within the North American topminnows (Teleostei: Fundulidae)
FIGURE 1. (A) †Fundulus lariversi, Tonopah, NV, Seibert Tuff, Miocene, 17.8–16.2 million years ago (mya), CIMNH 6-75-1, Specimen 2 (paratype specimen). (B) †Fundulus nevadensis, near Hazen, Middle Member of Truckee Formation, NV, Miocene, 10.8–9.8 mya, CIMNH uncataloged. (C) †Fundulus detillae, Logan County, KS, Ogallala Formation, Middle Pliocene, 5–3 mya; KUVP 865. D) †Fundulus nevadensis, near Hazen, Middle Member of Truckee Formation, NV, Miocene, 10.8–9.8 mya, LACM 17320. Scale bars equal 1 mm. Angled lines indicate the angle of the posterior coracoid.
FIGURE 10. Miracarus hurkai Kunst 1959 in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 10. Miracarus hurkai Kunst 1959, holotype (Kunst Coll.). A—dorsal view, B—ventral view, C—lateral view, D—detail of pteromorph and bothridial area, E—detail of interlamellar region. Bars indicating 50 µm. Abbreviations: abn—anterior border of notogaster, bo—bothridium, cgl—circumgastric line, lam—lamella, pd1—pedotectum I, pt— pteromorph, sbl—subbothridial lamella, ss—sensillus, tu2—tutorial carina 2. Rest represents names of setae or setal insertions.
FIGURE 8. Amiracarus pliocennatus Miko, n. gen., n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 8. Amiracarus pliocennatus Miko, n. gen., n. sp., details of holotype and paratype (individuals under A and C from Plate 1). A—lamellar cuspis of holotype in detail, B—lamellar cuspis of paratype in detail, D—sensillus of holotype, E—sensillus of paratype, C—detail of rostrum, paratype, F—lateral view of prodorsum of holotype, G— lateral view of prodorsum, paratype. Abbreviations: bo—bothridium, ctu1—cuspis of tutorial carina 1, ctu3—cuspis of tutorial carina 3, cus—cuspis of lamella, inc—rostral incision, ku—carina ku on pedotectum I, lam—lamella, pd1— pedotectum I, pt—pteromorph, ss—sensillus, tu1—tutorial carina 1, tu2—tutorial carina 2, tu3—tutorial carina 3. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 9. Amiracarus pliocennatus Miko, n. gen., n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 9. Amiracarus pliocennatus Miko, n. gen., n. sp., details of holotype and paratype (individuals under A and C from Plate 1). A—gnathosoma of holotype, B—pteromorph of holotype, C—ventral view on podosoma of paratype, D— part of ventral view of holotype, E—posterior of podosoma of paratype, F—posterior of podosoma of holotype. Abbreviations: cgl—circumgastric line, cpl—circumpedal line, dis—discidium, go—genital opening, ku—carina ku on pedotectum I, mt—mentotectum, op—ovipositor, pd1—pedotectum I, pd2—pedotectum II, pt—pteromorph, R— acetabular protrusion of leg III, ru—rutellum, TrIII— trochanter III, TrIV—trochanter IV, tsI—trochanteral seta I, tsII— trochanteral seta II. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 7. Amiracarus pliocennatus Miko, n. gen., n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 7. Amiracarus pliocennatus Miko, n. gen., n. sp., holotype. A—dorsal view, B—ventral view, C—lateral view of prodorsum and podosoma, D—detail of lamella and lamellar cuspis. Bars indicating 50 µm (A, B, C). Abbreviations: abt—abaxial tooth of cuspis, adt—adaxial tooth of cuspis, ao—anal opening, bo—bothridium, cgl—circumgastric line, cpl—circumpedal line, cus—cuspis of lamellae, dis—discidium, go—genital opening, ku—carina ku on pedotectum I, lam—lamella, mt—mentotectum, abn—anterior border of notogaster, pd1—pedotectum I, pd2—pedotectum II, pt— pteromorph, R—acetabular protrusion of leg III, sl—notogastral lateromedial furrow, ss—sensillus, TrIII—trochanter III, TrIV—trochanter IV, tu1—tutorial carina 1, tu2—tutorial carina 2, tu3—tutorial carina 3. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 5. Main differences between genera Amiracarus Miko n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 5. Main differences between genera Amiracarus Miko n. gen. (A–C) and Miracarus Kunst 1959 (D–F), based on the type species (Amiracarus senensis—left, Miracarus hurkai—right, reconstructed from holotype figure, see Fig. 1). Dorsal view of whole body (A and D): proportion between length of prodorsum and length of notogaster (grey arrows); proportion of width of prodorsum and width of notogaster (black arrows); position of interlamellar setae; form of pteromorphs; position of seta e2—in relation to setae in row c2–cp–e2–f2; position of the seta h3—in relation to the seta in row h –h2–h3. Lateral view of anterior part of the body (B and E): form of pteromorph; development of tutoria and tutorial cusps; size and form of pedotectum I. Development of the sensilus (C and F).
FIGURE 2 in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 2. Amiracarus senensis (Bernini 1975) n. comb. (fossil individual from sediments of cave Ponicova, Romania). A—dorsal view; B—ventral view; C—lateral view; D—detail of tutorium; E—sensilus. Legs missing, only trochanters III and IV remained preserved. Bar indicating 100 µm (A, B, C). Abbreviation: ao—anal opening, cgl— circumgastric line, cpl—circumpedal line, dis—discidium, go—genital opening, lam—lamella, mt– mentotectum, pd1— pedotectum I, pd2—pedotectum II, pt—pteromorph, R—acetabular protrusion of leg III, sl—notogastral lateromedial furrow, ss—sensillus, trIV—trochanter IV, tu—tutorium, tu1—tutorial carina 1, tu2—tutorial carina 2, tu3—tutorial carina 3. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 6 in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 6. Fossil material of Amiracarus pliocennatus Miko, n. gen., n. sp. Upper row—original photographs of Oana Moldovan, published here to allow matching with individuals as reported in Moldovan et al. (2011): A—holotype from Trhlovca Cave, Slovenia (reported in Moldovan et al. (2011) as Miracarus sp. on Fig. 3A, Fig. 5 and Tab 2 (both in Pliocene sections), B–C—paratypes from Račiška pečina Cave in Slovenia (individuals reported in Moldovan et al. (2011) Miracarus sp. on Fig. 5 and Tab 2 in Pleistocene sections; individual under B was later lost so the more recent photographs are not available). Bars indicating 100 µm. Middle row—Amiracarus pliocennatus Miko, n. gen., n. sp., holotype (same individual as sub A): D—dorsal view, E—ventral view, F—lateral view. Bars indicating 50 µm. Lower row—A. pliocennatus Miko, n. gen., n. sp., paratype (same individual as sub C): G—dorsal view, H—ventral view, I— lateral view. Bars indicating 50 µm.
FIGURE 4. Amiracarus pliocennatus Miko, n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 4. Amiracarus pliocennatus Miko, n. sp. (A–B, E paratype from Račiška pečina Cave, Slovenia; F— holotype). A—prodorsum of paratype from dorsal view; B—ventral view of paratype; C—variability of sensillus in paratypes; D—variability of lamellar cuspis, holotype right; E—detail of podosoma, ventral view. Bar indicating 100 µm (A, B). Abbreviations: cpl—circumpedal line, dis—discidium, ku—carina ku on pedotectum I, pd1—pedotectum I, pd2—pedotectum II, R—acetabular protrusion of leg III, tsI—trochanteral seta I, tsII—trochanteral seta II. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 1. Miracarus hurkai Kunst, 1959 in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 1. Miracarus hurkai Kunst, 1959 (holotype). A—dorsal view (without legs); B—ventral view (legs only partly depicted); C—dorsolateral view of prodorsum (notogaster and ventral structures only partly sketched); D—detailed view of sensillus. Bar indicating 100 µm (A, B, C). Abbreviations: an—anal plate, cgl—circumgastric line, cpl—circumpedal line, dis—discidium, g—genital plate, lam—lamella, mt—mentotectum, pd1—pedotectum I, pd2—pedotectum II, pt— pteromorph, R—acetabular protrusion of leg III, ro—rostrum, sl—notogastral lateromedial furrow, ss—sensillus, TrIII— trochanter III, Tr IV—trochanter IV, tsII—trochanteral seta II, tu—tutorium, tu1—tutorial carina 1, tu2—tutorial carina 2, tu3—tutorial carina 3. Rest represents names of setae or setal insertions and lyrifissures.
FIGURE 3. Amiracarus pliocennatus Miko, n in Oribatid mite fossils from pre-Quaternary sediments in Slovenian caves II. Amiracarus pliocennatus n.gen., n.sp. (Microzetidae) from Pliocene, with comments on the other species of the genus
FIGURE 3. Amiracarus pliocennatus Miko, n. sp. (A–C, E holotype from Trhlovca Cave, Slovenia; D—paratype from Račiška pečina Cave, Slovenia). A—dorsal view; B—ventral view (part); C—lateral view of prodorsum and podosoma; D—ventral view of camerostome and rostrum; E—detail of rostrum, dorsolateral view. Bars indicating 50 µm (A, C), 100 µm (B) and 25 µm (D). Abbreviations: cgl—circumgastric line, cpl—circumpedal line, dis—discidium, inc—rostral incision, lam—lamella, mt—mentotectum, pd1—pedotectum I, pd2—pedotectum II, pt—pteromorph, R—acetabular protrusion of leg III, rc—rostral carina, ru—rutellum, sl—notogastral lateromedial furrow, ss—sensillus, TrIII— trochanter III, Tr IV—trochanter IV, tsI—trochanteral seta I, tsII—trochanteral seta II, tu1—tutorial carina 1, tu2— tutorial carina 2, tu3—tutorial carina 3. Rest represents names of setae or setal insertions and lyrifissures.
Fig. 1 in The First Fossil Of The Subfamily Trypanaeinae (Coleoptera: Histeridae): A New Species Of Trypanaeus In Dominican Amber
Fig. 1. Photograph of the amber piece (AMNH DR-14-360) showing the relative positions of the holotype (arrow A) and the paratype (arrow B) of Trypanaeus hispaniolus n. sp.
Figs. 1–5. Cessator brodzinskyi, holotype. 1 in The First Fossil Species of the Extant GenusCessatorKazantsev (Coleoptera: Lycidae): A New Leptolycini from Dominican Amber
Figs. 1–5. Cessator brodzinskyi, holotype. 1) Dorsal view; 2) Ventral view; 3) Pronotum and head; 4) Prosternum and mouthparts; 5) Antenna. Scale bar = 0.5 mm.
FIGURES 6–7 in A new fossil species and new record of Atomaria Stephens (Coleoptera: Cryptophagidae) from Eocene Baltic amber
FIGURES 6–7. Atomaria (Anchicera) alekseevi Lyubarsky et Bukejs, No AWI-143 [CVIA]: 6—habitus, dorso-lateral view; 7—habitus, ventro-lateral view. Body length of specimen is 1.57 mm.
FIGURES 1–3 in A new fossil species and new record of Atomaria Stephens (Coleoptera: Cryptophagidae) from Eocene Baltic amber
FIGURES 1–3. Atomaria (Anchicera) propinqua sp. nov., holotype, No 062 [ACAB]: 1—habitus, dorsal view; 2—habitus, ventral view; 3—right antenna, dorsal view. Scale bars = 0.2 mm for Figs 1–2; 0.1 mm for Fig. 3.
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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
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.