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Figure 3 from: Messas YF, Sobczak JF, Vasconcellos-Neto J (2017) An alternative host of Hymenoepimecis japi (Hymenoptera, Ichneumonidae) on a novel family (Araneae, Araneidae), with notes on behavioral manipulations. Journal of Hymenoptera Research 60: 111-118. https://doi.org/10.3897/jhr.60.14817
Figure 3 - Web modification in Mecynogea biggiba induced by the parasitoid wasp Hymenoepimecis japi. A Normal web of M. biggiba B–C Cocoon webs in lateral view, and D close of the center of the cocoon web. Arrows indicate the dome-shaped part of the web (white), hub of the dome (red) and support threads (green).
Figure 2 from: Polilov AA (2017) First record of Megaphragma (Hymenoptera, Trichogrammatidae) in Columbia, and third animal species known to have anucleate neurons. Journal of Hymenoptera Research 60: 181-185. https://doi.org/10.3897/jhr.60.19907
Figure 2 - Diagnostic characters of Megaphragma caribea, SEM: A head of female B head of male C antennal club, male D antennal club, female E wings F terga of metasoma.
Figure 3 from: Báthori F, Pfliegler WP, Zimmerman C-U, Tartally A (2017) Online image databases as multi-purpose resources: discovery of a new host ant of Rickia wasmannii Cavara (Ascomycota, Laboulbeniales) by screening AntWeb.org. Journal of Hymenoptera Research 61: 85-94. https://doi.org/10.3897/jhr.61.20255
Figure 3 Dorsal (A), head (B) and profile (C) view of the Rickia wasmannii infected Myrmica hellenica worker, recorded on AntWeb (specimen: CASENT0907653), arrows indicate some clearly identifiable R. wasmannii thalli.
Figure 9 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 9 - A TEM image of the class one gland cells found underneath the synsternal translucent patch in a Dendrocerus sp. (Hymenoptera: Megaspilidae) The arrow points to the secretory duct in the cuticle, while the square outlines the gland cells at the base of these ducts B A closer look at the class one gland cells at the base of one of these ducts. Specimen identifier: IM 5442.
Figure 5 from: Pezzini C, Jahnke SM, Köhler A (2017) Morphological characterization of immature stages of Habrobracon hebetor (Hymenoptera, Braconidae) ectoparasitoid of Ephestia kuehniella (Lepidoptera, Pyralidae). Journal of Hymenoptera Research 60: 157-171. https://doi.org/10.3897/jhr.60.20104
Figure 5 - Scanning electron micrographs of immature stages of Habrobracon hebetor: A detail of the smooth surface of the egg B detail of the setae on the dorsal surface of the thorax and abdomen of third and fourth larval instars and prepupa C detail of the smooth dorsal surface of first and second larval instars with spiracles D detail of a trichoid sensillum E prepupa F female pupa G male pupa.
Figure 8 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 8 - A A three-dimensional model of a class 3 gland cell found underneath the cuticle. The model shows the cuticle in blue, the gland cell in red, and then secretory duct connecting them in green B A three-dimensional model of a lamellar body.
Figure 5 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 5 - Single most-parsimonious tree (raw length = 2828, ci = 0.19, ri = 0.61), of 101 sub/genera of Mutillidae and 4 outgroups, both sexes, 230 characters many additive and all with implied weighting (N = 5, k = 81). Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 4 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 4 - Strict consensus of 38 most-parsimonious trees (length = 2828, ci = 0.19, ri = 0.61), of 101 sub/genera of Mutillidae and 4 outgroups, both sexes, 230 characters many additive and all equally weighted. Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 6 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 6 - Brightfield images with arrows pointing to the patches of translucent cuticle in a Trogus sp. (Hymenoptera: Ichneumonidae) (identifier: PSUC_FEM 86178).
Figure 1 from: Báthori F, Pfliegler WP, Zimmerman C-U, Tartally A (2017) Online image databases as multi-purpose resources: discovery of a new host ant of Rickia wasmannii Cavara (Ascomycota, Laboulbeniales) by screening AntWeb.org. Journal of Hymenoptera Research 61: 85-94. https://doi.org/10.3897/jhr.61.20255
Figure 1 Appearance of the fungal infection on mounted specimens: Rickia-infected Myrmica scabrinodis hosts killed by freezing (A) or with ethanol (B) or chloroform (C), photographed one month after mounting and dry storage.
Figure 2 from: Messas YF, Sobczak JF, Vasconcellos-Neto J (2017) An alternative host of Hymenoepimecis japi (Hymenoptera, Ichneumonidae) on a novel family (Araneae, Araneidae), with notes on behavioral manipulations. Journal of Hymenoptera Research 60: 111-118. https://doi.org/10.3897/jhr.60.14817
Figure 2 - Mecynogea biggiba parasitized by Hymenoepimecis japi. A Adult female spider and first instar larvae B Adult female spider with second instar larvae on its abdomen C Third instar larvae of H. japi after killing its host spider D Third instar larvae consuming the hemolymph of M. biggiba E Detail of dorsal tubercles bearing several hooks F Cocoon of H. japi G Dense weave of cocoon threads in detail.
Figure 5 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 5 - Brightfield images showing the dorsal and ventral patches of translucent cuticle in Orussidae, viewed externally. A Dorsal view of an Orussus sp. (Hymenoptera: Orussidae), viewed externally (identifier: IM 1445/ NCSU 53625) B Ventral view of the same specimen C Arrows pointing to dorsal patches of translucent cuticle in Orussus abietinus Scopoli, 1763 (Hymenoptera: Orussidae) (identifier: PSUC_FEM 86200) D A closer view of one of the translucent patches from the same specimen.
Figure 4 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 4 - SEM image of the synsternal translucent patch and synsternal setiferous patch in a male (A) and female (B) Lagynodes sp. (Hymenoptera: Megaspilidae) Specimens from lot IM 930. Abbreviations: smp = synsternal setiferous patch; stp = synsternal translucent patch.
Figure 9 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 9 - Single most-parsimonious tree (raw length = 1134, ci = 0.19, ri = 0.61), of 101 sub/genera of Mutillidae and 4 outgroups, females only, 97 characters many additive and all with implied weighting (N = 5, k = 81). Group support (GC) values shown for all groups supported by resampling. Terminals in bold are those whose placements differ by more than mere taxonomic level in the classifications of DB and LN (see Appendix 1).
Figure 2 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 2 - SEM images of the syntergal and synsternal translucent patches and synsternal setiferous patches in male Megaspilus armatus Say, 1836 (Hymenoptera: Megaspilidae) specimens. A Dorsal surface of the metasoma, showing the scutes (identifier PSUC_FEM 68527) B Ventral surface of the metasoma (identifier: PSUC_FEM 50127) C Closer view of the synsternal setiferous patch and scutes, with arrows pointing to pore openings in the cuticle (identifier: PSUC_FEM 50127) Abbreviations: smp = synsternal setiferous patch; stp = synsternal translucent patch.
Figure 10 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 10 - TEM image of the lamellar bodies found underneath the synsternal translucent patch in a Dendrocerus sp. (Hymenoptera: Megaspilidae) Specimen identifier: IM 5442.
Figure 12 from: Brothers DJ, Lelej AS (2017) Phylogeny and higher classification of Mutillidae (Hymenoptera) based on morphological reanalyses. Journal of Hymenoptera Research 60: 1-97. https://doi.org/10.3897/jhr.60.20091
Figure 12 - Preferred most-parsimonious tree (see Fig. 5) with potential groups incorporating ideas from both previous classifications indicated.
Figure 3 from: Pérez-de-Heredia I, Darrouzet E, Goldarazena A, Romón P, Iturrondobeitia J-C (2017) Differentiating between gynes and workers in the invasive hornet Vespa velutina (Hymenoptera, Vespidae) in Europe. Journal of Hymenoptera Research 60: 119-133. https://doi.org/10.3897/jhr.60.13505
Figure 3 - PCA of the three CHC profiles labelled by hornet size, WW and DW. Principal Component Analysis of CHC profiles in each of the four autumn colonies. Chemical groups are defined by continuous line: Group 1; dash line: Group 2 and dot-dash line: Group 3. PCA dots show representations according to GMMs size, wet weight and dry weight thresholds of hornets. Size, Black dots: Large females (MW ≥ 4.5 mm); White dots: Small females (MW < 4.5 mm). Wet weight, Black dots: Heavy fresh females (≥ 0.618 g); White dots: Light fresh females (< 0.618 g). Dry weight, Black dots: Heavy dry females (≥ 0.225 g); White dots: Light dry females (< 0.225 g).
Figure 4 from: Pezzini C, Jahnke SM, Köhler A (2017) Morphological characterization of immature stages of Habrobracon hebetor (Hymenoptera, Braconidae) ectoparasitoid of Ephestia kuehniella (Lepidoptera, Pyralidae). Journal of Hymenoptera Research 60: 157-171. https://doi.org/10.3897/jhr.60.20104
Figure 4 - Immature stages of Habrobracon hebetor female (side view): A Prepupa B first pupal phase C second pupal phase D third pupal phase before adult emergence. Scale: 0.5 mm.
Figure 1 from: Trietsch C, Mikó I, Ulmer JM, Deans AR (2017) Translucent cuticle and setiferous patches in Megaspilidae (Hymenoptera, Ceraphronoidea). Journal of Hymenoptera Research 60: 135-156. https://doi.org/10.3897/jhr.60.13692
Figure 1 - Brightfield images of syntergal and synsternal translucent patches and synsternal setiferous patches in different species of Conostigmus (Hymenoptera: Megaspilidae), viewed externally. A Dorsal surface (syntergite) within a C. bipunctatus Kieffer, 1907 (Hymenoptera: Megaspilidae) specimen (identifier: IM 1751) B Ventral surface (synsternite) within the same C. bipunctatus specimen C Ventral surface of Conostigmus sp. C7A (identifier: CLEV 22741) D Ventral surface of Conostigmus sp. C7B (identifier: PSUC_FEM 83781) Abbreviations: smp = synsternal setiferous patch; stp = syntergal/synsternal translucent patch. The species notations given are not issued for purposes of zoological nomenclature, and are not published within the meaning of the International Code of Zoological Nomenclature.
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.