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Fig. 2 in Reproductive characteristics of the Burmese Narrow-headed Softshell Turtle, Chitra vandijki, in captivity
Fig. 2. Characteristics of Burmese Narrow-headed Softshell Turtles: (A) back; (B) head and neck, close-up; (C) male, ventral view; (D) female, ventral view.
Fig. 1 in Reproductive characteristics of the Burmese Narrow-headed Softshell Turtle, Chitra vandijki, in captivity
Fig. 1. Artificial rearing facility of Burmese Narrow-headed Softshell Turtles: (A) breeding pond, (B) nesting area, (C) incubation box, (D) rearing facilities.
Figure 4 in Natives bite back: depredation and mortality of invasive juvenile Burmese pythons (Python bivittatus) in the Greater Everglades Ecosystem
Figure 4. Photographic documentation indicative of mesomammal depredation on two telemetered juvenile Burmese pythons (Python bivittatus Kuhl, 1820) in Big Cypress National Preserve, Florida, USA. Left panel: A juvenile python's (MD1) radio transmitter recovered on 12 September 2021; the red circle encompasses sign of mastication. Right panel: Partially consumed juvenile python (MD3) carcass with transmitter discovered on 19 September 2021; partial Felidae tracks were located within two meters of the carcass. Images by the U.S. Geological Survey.
Figure 3 in Natives bite back: depredation and mortality of invasive juvenile Burmese pythons (Python bivittatus) in the Greater Everglades Ecosystem
Figure 3. Necropsy photographs of the juvenile Burmese python (Python bivittatus Kuhl, 1820) foraging death. The python's wounds were consistent in size with those that could be inflicted by the prey item (hispid cotton rat, Sigmodon hispidus Say & Ord, 1825) during efforts to capture and subdue. From the top left: (A) python with incision exposing the prey item in situ; (B) exterior wounding on dorsum of snake (white arrows); (C) posterior puncture wound showing proximity to the non-vascularized portion of the right lung (ID tag in orange above scale); (D) anterior puncture wound viewed from within the stomach lining. Subject was discovered in the field on 17 October 2021 in Big Cypress National Preserve, Florida, USA and represents the largest predator:prey size ratio in this size class at 1:1.06. Images by the U.S. Geological Survey.
Figure 5 in Natives bite back: depredation and mortality of invasive juvenile Burmese pythons (Python bivittatus) in the Greater Everglades Ecosystem
Figure 5. Photographic evidence of three telemetered juvenile Burmese pythons (Python bivittatus Kuhl, 1820) where mortality causes were only inconclusive or undetermined, in Big Cypress National Preserve, Florida, USA. Panel (A) intact transmitter of UM2 in situ found on 19 October 2022; (B) carcass orientation of UM3 found on flooded ground 23 October 2021; (C) partially consumed juvenile python (UM5) with transmitter discovered 29 October 2021 showing carcass compression and decay in matted ground cover; (D) python UM6 radio transmitter recovered 19 November 2021 with black and white hairs attached; (E) transmitter of UM7 suspended in open prairie grasses approx. 1.5 m above ground. Images by the U.S. Geological Survey.
Figure 2 in Natives bite back: depredation and mortality of invasive juvenile Burmese pythons (Python bivittatus) in the Greater Everglades Ecosystem
Figure 2. Florida cottonmouth (Agkistrodon conanti Gloyd, 1969) in-situ (left) that consumed a telemetered juvenile Burmese python (Python bivittatus Kuhl, 1820) and confirmed by radiography (right; used with editorial permission and further described in Bartoszek et al. 2021). Subject was discovered in the field on 31 May 2021 in Big Cypress National Preserve, Florida, USA. Images by U.S. Geological Survey (left) and Zoo Miami (right).
Figure 1 in Natives bite back: depredation and mortality of invasive juvenile Burmese pythons (Python bivittatus) in the Greater Everglades Ecosystem
Figure 1. Photographic evidence and representation of some of the variety of confirmed and potential causes of mortality found for invasive Burmese pythons (Python bivittatus Kuhl, 1820) in the Greater Everglades Ecosystem in 2021 in Big Cypress National Preserve, Florida, USA. From left to right: American Alligator (Alligator mississippiensis Daudin, 1802) depredations, mesomammal depredations (felid prints in muddy substrate; e.g., bobcat, Lynx rufus Schreber, 1777), Florida cottonmouth (Agkistrodon conanti Gloyd, 1969) depredations, potential avian depredations, mishandling/misidentification of appropriate prey (e.g., large hispid cotton rat, Sigmodon hispidus Say and Ord, 1825). Images by U.S. Geological Survey.
Figure 3 in Cretopachyderes gen. nov., a new remarkable click beetle (Coleoptera: Elateridae: Agrypninae) from the mid-Cretaceous Burmese amber
Figure 3. Cretopachyderes burmitinus gen. et sp. nov., holotype: (a) anterior part of body, dorsal view; (b) head and anterior part of pronotum, dorsal view; (c) anterior part of body, ventral view; (d) antennomeres 10 and 11; (e) antenna and anterior part of prothorax, ventral view. Scale bar equals 1.0 mm (a, c), 0.5 mm (b, e), and 0.1 mm (d).
Figure 2 in Cretopachyderes gen. nov., a new remarkable click beetle (Coleoptera: Elateridae: Agrypninae) from the mid-Cretaceous Burmese amber
Figure 2. Cretopachyderes burmitinus gen. et sp. nov., holotype: (a) habitus, dorsal view; (b) habitus, ventral view. Scale bar equals 2.0 mm.
Figure 1 in Cretopachyderes gen. nov., a new remarkable click beetle (Coleoptera: Elateridae: Agrypninae) from the mid-Cretaceous Burmese amber
Figure 1. Cretopachyderes burmitinus gen. et sp. nov., holotype: (a) general view of the inclusion in amber stone; (b) anterior part of body, dorsal view; (c) habitus, dorsal view. Scale bar equals 2.0 mm (a, c) and 1.0 mm (b).
Figure 5 in Cretopachyderes gen. nov., a new remarkable click beetle (Coleoptera: Elateridae: Agrypninae) from the mid-Cretaceous Burmese amber
Figure 5. Live specimen of extant Pachyderes cf. apicalis CandŁze, 1865, Singapore: (a, b) habitus, dorsal view; (c) detail of head, antennae and pronotum, fronto-dorsal view. Credit for photographs: Adeline Goh, Singapore.
Figure B1 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure B1. Molecules identified in the pyrolysates of Burmese amber. Individual compounds are labeled according to the identification of peaks in Figs. 1 and B2 and Table A1.
Figure B2 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure B2. Total ion chromatograms from the THM–GC–MS analysis of Burmese ambers. Numbered peaks refer to identified compounds in Table A1 and Fig. B1.
Figure 10 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 10. Distribution of the discussed characters among Rhopalosomatidae. The tree topology of the recent genera is based on Brothers and Carpenter (1993), Brothers (1999) (both: "rhopalosomatids" sister to Olixon), Guidotti (1999), and unpublished molecular data (Blaschke et al., unpublished results) (both: Olixon + (Liosphex + (Rhopalosoma + Paniscomima))).
Figure 8 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 8. Cretolixon alatum gen. et sp. nov., female, paratype (VL-Bu-04; UMB). (a) Basal half of left antenna. (b) Details of mouth parts (maxillary palpus highlighted in grey). (c) Details of mouth parts (labial palpus highlighted in grey). Abbreviations: FI, FII, FIII – flagellomere 1, flagellomere 2, flagellomere 3; G – gena; lp1,..., lp4 – labial palpomere 1,..., labial palpomere 4; M – mandible; mp2,..., mp6 – maxillary palpomere 2,..., maxillary palpomere 6; p – pedicel; sc – scape. Drawings based on Fig. 5b.
Figure 9 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 9. Some characters of Rhopalosomatidae. (a) Rhopalosomatidae, gen. et sp. indet., Burmese (Kachin) amber (ZMB; MB.I 6501), basal section of hind wing. (b) Liosphex boreus Lohrmann (in Lohrmann and Ohl, 2010), basal section of hind wing. (c) Rhopalosoma nearcticum Brues, 1943, basal section of hind wing. (d) Olixon banksii (Brues, 1922), mouthparts. (e) Liosphex longicornis Lohrmann (in Lohrmann and Ohl, 2010), mouthparts. (f) Paniscomima kilombero Lohrmann, 2011, mouthparts. (g) Paniscomima opposita Guidotti, 2007, male, paratype, head in dorsal view. (h) Paniscomima seyrigi (Berland, 1951), female, head in dorsal view. (i) Liosphex varius Townes, 1977, female, holotype, head in dorsal view. Abbreviations: ab – apical bristle; lp1,..., lp4 – labial palpomere 1,..., labial palpomere 4; mp1,..., mp6 – maxillary palpomere 1,..., maxillary palpomere 6. Panel (i) is reproduced with permission from copyright holder and was first published in Zootaxa (Lohrmann and Ohl, 2010); photo by David Wahl.
Figure 7 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 7. Cretolixon alatum gen. et sp. nov., male, holotype (MB.I 6500; ZMB). Venation of fore and hind wings (microtrichia omitted, drawing based on a photograph with a perspective similar to that of Fig. 4e).
Figure 4 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 4. Cretolixon alatum gen. et sp. nov., male, holotype (MB.I 6500; ZMB). (a) Habitus in lateral view. (b) Head in slightly oblique frontal view. (c) Mesosoma in lateral view. (d) Partial right antenna. (e) Wings. Abbreviations: ab – apical bristle; FI, FII, FIII – flagellomere 1, flagellomere 2, flagellomere 3; lo – lateral ocellus; oc – occipital carina; p – pedicel; sc – scape. The arrowheads indicate the apical bristles on third maxillary palpomeres (c) and basal flagellomeres (d).
Figure 5 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 5. Cretolixon alatum gen. et sp. nov., female, paratype (VL-Bu-04, UMB). (a) Habitus in lateral view. (b) Head and basal halves of antennae in oblique lateral view. (c) Mesosoma in lateral view. (d) Right protibia and protarsus. (e) Wings. The arrowheads indicate the apical bristles on second labial and third maxillary palpomeres (b).
Figure 1 in †Cretolixon - a remarkable new genus of rhopalosomatid wasps (Hymenoptera: Vespoidea: Rhopalosomatidae) from chemically tested, mid-Cretaceous Burmese (Kachin) amber supports the monophyly of Rhopalosomatinae
Figure 1. Total ion chromatogram from the THM–GC–MS analysis of the Burmese amber MB.I 6500. Numbered peaks refer to identified compounds in Table A1 and Fig. B1.
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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)
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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.