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Figure 3 in Evolution and phylogeny of glass-sponge-associated zoantharians, with a description of two new genera and three new species
Figure 3. Images of preserved Amphidiscophora spongesassociated zoantharians. A, B, Epizoanthus fatuus collected from Japan; C, Epizoanthus aff. fatuus collected from Australia; D, Epizoanthus stellaris collected from Australia; E, Epizoanthus aff. armatus collected from Japan. Scales: 10 mm.
FIGURE 5 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 5. Map of point localities of Turrana abnormis Distant (triangles) and T. ejuncida sp. nov. (circle). Localities of T. abnormis from Cassis & Gross (2002).
FIGURE 4 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 4. Turrana ejuncida sp. nov. Micro-CT images of female terminalia (WAME106180). A) dorsal, B) ventral, and C) lateral views of tip of abdomen. Scale bar = 100 µm.
FIGURE 3 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 3. Turrana ejuncida sp. nov. Micro-CT images of male genitalia (WAME106179). A) pygophore and semi-inflated aedeagus, lateral view; sclerotized portions of conjunctival processes coloured green. B) anterior of aedeagus. C) right paramere. Scale bars = 100 µm.
FIGURE 2 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 2. Scanning electron micrographs of Turrana ejuncida sp. nov. female (WAME106180). A) head, lateral; B) head, dorsal; C) head and thorax, ventral; D) pronotum, dorsal; E) hemelytra, detail; F) metathoracic scent gland. Anterior to left in all images.
FIGURE 1 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 1. Turrana ejuncida sp. nov. dorsal and lateral habitus images. A, B) holotype male (WAME106179); C, D) paratype female (WAME106180).
FIGURE 6 in Turrana ejuncida, a new species of Acanthocorini (Hemiptera: Heteroptera: Coreidae) from Cape Range, Western Australia, with discussion of its systematic position and host plant associations
FIGURE 6. Collecting sites of Turrana ejuncida sp. nov. in Cape Range National Park. A) flowering Ipomoea yardiensis (detail in inset) on remote rocky ridge adjacent to canyon. B) Triodia epactia (inset shows dry, brown underside of plant) at side of Charles Knife Canyon Road, on ridge.
Data associated to: A bioenergetics approach to understanding sex differences in the foraging behaviour of a sexually monomorphic species
<p>Many animals show sexually divergent foraging behaviours reflecting different physiological constraints or energetic needs. We used a bioenergetics approach to examine sex differences in foraging behaviour of the sexually monomorphic northern gannet. We used the relationship between dynamic body acceleration and energy expenditure to investigate energetic cost of prey capture attempts (plunge dives). Fourteen gannets were tracked using GPS, TDR, and accelerometers. All plunge dives in a foraging trip represented <4% of total energy expenditure, with no significant sex differences in expenditure. Despite females undertaking significantly more dives than males, the low energetic cost resulted in no sex differences in overall energy expenditure across a foraging trip. Bayesian stable isotope mixing models based on blood samples highlighted sex differences in diet, however, calorific intake from successful prey capture was estimated to be similar between sexes. Females experienced 9.6% higher energy demands, due to unequal chick provisioning. Estimates show a minimum of 21% of dives have to be successful for females to meet their daily energy requirements, and 29% for males. Our analyses suggest northern gannets show sex differences in foraging behaviour primarily related to dive rate and success rather than the energetic cost of foraging or energetic content of prey.</p>
FIGURE 4 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 4. Alpheus sciolii sp. nov., paratype, male (cl 16.0 mm) from Heron Island, Australia (MNHN-IU-2018-5525): A, frontal region, dorsal; B, same, lateral; C, telson, dorsal, plumose setae omitted; D, tooth on ventromesial carina of first article of antennular peduncle, lateral; E, third maxilliped, lateral; F, second pereiopod, lateral; G, third pereiopod, lateral; H, fifth pereiopod, lateral; I, same, propodus and dactylus, ventromesial; J, second pleopod, detail of appendices masculina and interna, anterior; K, uropod, dorsal, plumose setae omitted.
FIGURE 7 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 7. Alpheus sciolii sp. nov., holotype male (cl 8.6 mm) from New Georgia, Solomon Islands (MNHN-IU-2018-5667) [A, B]; paratype female (cl 10.7 mm) from Heron Island, Queensland, Australia (MNHN-IU-2018-5668) [C]: A, C, living shrimps, dorsal; B, same, lateral. Photographs by the author.
FIGURE 5 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 5. Alpheus sciolii sp. nov., paratype, male (cl 9.3 mm) from New Georgia, Solomon Islands (MNHN-IU-2018-5669): A, major (right) cheliped, lateral; B, same, chela, mesial; C, same, detail of ventromesial margin of merus, mesial, slender setae omitted; D, same, dactylus and pollex, lateral, setae omitted; E, minor (left) cheliped, carpus and chela, mesial; F, same, chela, lateral.
FIGURE 3 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 3. Alpheus thompsoni sp. nov., holotype, female (cl 13.3 mm) from Madang, Papua New Guinea (MNHN-2013- 16813): A, shrimp in life, dorsal; B, same, lateral. Photographs by the author, taken during Our Planet Reviewed—Papua Niugini Expedition (MNHN).
FIGURE 2 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 2. Alpheus thompsoni sp. nov., holotype, female (cl 13.3 mm) from Madang, Papua New Guinea (MNHN-2013- 16813): A, major (left) cheliped, distal portion of merus, carpus and chela, lateral; B, same, mesial; C, same, ischium, merus and carpus, mesial; D, same, dactylus, lateral, setae omitted; E, minor (right) cheliped, ischium, merus and carpus, lateral; F, same, merus, mesial, setae omitted; G, same, chela, lateral.
FIGURE 1 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 1. Alpheus thompsoni sp. nov., holotype, female (cl 13.3 mm) from Madang, Papua New Guinea (MNHN-2013- 16813): A, frontal region, dorsal; B, same, lateral; C, telson, dorsal, plumose setae omitted; D, tooth on ventromesial carina of first article of antennular peduncle, lateral; E, third maxilliped, lateral; F, second pereiopod, lateral; G, third pereiopod, lateral; H, same, distal portion of propodus and dactylus, ventrolateral, slender setae on propodus omitted; I, fifth pereiopod, lateral; J, same, propodus and dactylus, ventromesial; K, uropod, dorsal, plumose setae omitted.
FIGURE 6 in Description of two new species of goby-associated snapping shrimps from the tropical western Pacific (Decapoda: Alpheidae: Alpheus)
FIGURE 6. Alpheus sciolii sp. nov., non-type male (cl 14.5 mm) from Nha Trang Bay, Vietnam (MNHN-IU-2018-5671): A, left (major) cheliped, carpus and chela, lateral; B, right (minor) cheliped, chela, lateral; C, telson, dorsal, plumose setae omitted.
FIGURE 5 in Description of a new species of Aspidonema (Sachs, 1949) Andrássy, 1958 (Nematoda: Bunonematidae) associated with mint leaf beetle Chrysolina herbacea (Duftschmid, 1825) from India
FIGURE 5. Light micrograph of A. kashmirensis sp. nov. male A: Pharyngeal region. B, C: Posterior body region showing arrangement of bursal papillae. D: Bifid tail end. E, F: Cloacal region showing spicules and gubernaculum (Scale bars= 5 μm).
FIGURE 4 in Description of a new species of Aspidonema (Sachs, 1949) Andrássy, 1958 (Nematoda: Bunonematidae) associated with mint leaf beetle Chrysolina herbacea (Duftschmid, 1825) from India
FIGURE 4. Light micrograph of A. kashmirensis sp. nov. female A–C: Anterior body region showing shields and warts. C, D: Body region showing warts and network. E, F: Body region showing striated ridge. G–I: Body region showing ridges; J, K: Anterior end. L: Pharyngeal region. M: Female reproductive system. N: Mid body region showing warts and vulval opening. O, P: Posterior body region (Scale bars= 5 μm).
FIGURE 3 in Description of a new species of Aspidonema (Sachs, 1949) Andrássy, 1958 (Nematoda: Bunonematidae) associated with mint leaf beetle Chrysolina herbacea (Duftschmid, 1825) from India
FIGURE 3. SEM micrographs of A. kashmirensis sp. nov. A, B: Body region showing warts, shields and network. C: Body region with few shields sloughed off. D–G: Body region with warts; shields removed leaving fish bone-like or peg-like remnants of attachment with underlying cuticle. H: Body region showing warts and ridges. I: Vulval region showing obliterated outermost ridge. J–K: Left side of body with longitudinal ridges (Scale bars = 5 μm).
Figure 6 in Description of a new and a known insect-associated species of the genus Halicephalobus Timm, 1956 (Panagrolaimidae: Rhabditida) along with intrageneric relationship
Figure 6. Halicephalobus similigaster (Andrássy, 1952) Andrássy, 1974 female (LM). (a) Anterior end; (b, c) pharyngeal region; (d) pharyngo-intestinal junction; (f) genital branch showing double flexure; (g) posterior region; (h) juvenile inside the body. Scale bar = 10 µm.
Figure 1 in Description of a new and a known insect-associated species of the genus Halicephalobus Timm, 1956 (Panagrolaimidae: Rhabditida) along with intrageneric relationship
Figure 1. Termite host, Rhinotermes lucifugus. (a). Pongamia pinnata tree showing microhabitat (hollow) of Rhinotermes lucifugus; (b): Rhinotermes lucifugus colony on termite mound; (c): soldiers of Rhinotermes lucifugus. Scale bar = 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.