Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
4,481
datasets available to search
ShareScore release 0.9.0
Dataset results
4,481 results for “research journal”
Fig 6 from: Heller K-G, Hemp C (2024) Egg shape and size in Phaneropterinae and other Tettigonioidea (Orthoptera, Ensifera): A global review with new data. Journal of Orthoptera Research 33(1): 103-112. https://doi.org/10.3897/jor.33.116173
Fig 6 Eggs of Onomarchus cretaceus. A. Oviposition site with only the strips of the eggs visible; B. Wood opened with eggs completely visible (eggs damaged - dried out).
Fig 8 from: Heller K-G, Hemp C (2024) Egg shape and size in Phaneropterinae and other Tettigonioidea (Orthoptera, Ensifera): A global review with new data. Journal of Orthoptera Research 33(1): 103-112. https://doi.org/10.3897/jor.33.116173
Fig 8 Phaneropterine eggs in situ and oviposition. A–F. Eggs on and in plants after oviposition. A, B. Eggs glued on leaves: A. Catoptropteryx aurita; B. Gonatoxia maculata; C–E. Eggs inserted into leaves: C. Gonatoxia immaculata; D. Eurycorypha resonans; E. Plangia multimaculata; F. Eggs inserted into twigs: Dioncomena tanneri; G, H. Oviposition into the ground: Poecilimon affinis, G. Female ovipositing; H. Immediately after oviposition. Note the moist sand around the oviposition site.
Fig 1 from: Heller K-G, Hemp C (2024) Egg shape and size in Phaneropterinae and other Tettigonioidea (Orthoptera, Ensifera): A global review with new data. Journal of Orthoptera Research 33(1): 103-112. https://doi.org/10.3897/jor.33.116173
Fig 1 Dimensions of eggs in different tettigonioid groups. A. Height versus width; B. Aspect ratio versus length.
Fig 5 from: Heller K-G, Hemp C (2024) Egg shape and size in Phaneropterinae and other Tettigonioidea (Orthoptera, Ensifera): A global review with new data. Journal of Orthoptera Research 33(1): 103-112. https://doi.org/10.3897/jor.33.116173
Fig 5 Eggs of Mecopodinae (A–D), Phyllophorinae (E) and Pseudophyllinae (F–J) (above dorsal view, below lateral view). A. Mecopoda elongata; B. Afromecopoda preussiana; C. Leproscirtus granulosus; D. Apteroscirtus densissimus; E. Phyllophorina kotoshoensis; F. Zabalius apicalis; G. Pseudotomias usambaricus; H. Gnathoclita vorax; I. Onomarchus cretaceus; J.Onomarchus uninotatus. Scale bar: 5 mm.
Fig 4 from: Heller K-G, Hemp C (2024) Egg shape and size in Phaneropterinae and other Tettigonioidea (Orthoptera, Ensifera): A global review with new data. Journal of Orthoptera Research 33(1): 103-112. https://doi.org/10.3897/jor.33.116173
Fig 4 Relationship of egg volume and egg mass to body size (proxy male body mass) in the genus Poecilimon s.l. (data of male body mass from Vahed and Gilbert 1996, Borissov et al. 2023; data of egg mass from Hartley and Warne 1972, Reinhold and Heller 1993).
Supplementary material 1 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Supplementary information
Figure 6 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 6 Cotesia trivaliae sp. nov., male (A–C) A habitus B antenna C aedeagus ventral view; cocoon masses (D–F) DC. trivaliae sp. nov. EC. tibialisFC. ofella. Scale bars: 500 µm (A, B); 100 µm (C).
Figure 5 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 5 Cotesia trivaliae sp. nov. female A habitus B head frontal view C mesosoma and T1 lateral view D head dorsal view E fore wing F hind wing G mesoscutum dorsal view H ovipositor lateral view I metasoma lateral view J metasoma dorsal view (T1-T3) K propodeum dorsal view L 5th tarsomere of front leg, arrow points spine M hind leg outer face N antenna. Scale bars: 500 µm (A–K, M, N); 100 µm (L).
Figure 4 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 4 Median-joining network designed for 56 CO1 haplotypes of different Cotesia segregates. Black dots are median vectors representing the missing unsampled intermediary haplotype(s). Mutational steps are marked with short black lines. Haplotypes H1, H2 (yellow circles) = 'ruficrus'; H3, H4 (light green circles) = 'vanessae'; H5 (grey circle) = 'cf. tibialis white cocoons'; H6, H7 (orange circles) = 'trivaliae sp. nov.'; H8–H12 (blue circles) = 'tibialis 1'; H13–H15 (light blue circles) = 'tibialis 2'; H16, H17 (purple circles) = 'ofella'; H18–H20 (pink circles) = 'xylina 1'; H21–H39 (turquois circles) = 'xylina 2'; H40–H43 (white circles) = 'xylina 3'; H44–H46 (green circles) = 'yakutatensis 1'; H47–H56 (red circles) = 'yakutatensis 2'.
Figure 3 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 3 A Bayesian tree inferred from the CotesiaCO1 barcoding haplotypes. Bayesian posterior probabilities are shown above branches; scale bar indicates substitutions per site (0.02). Potential scale reduction factors (PSRF) were all approximately equal to one. Description of Cotesia haplotypes is given in Suppl. material 1: table S1. Outgroups: Aphidius sussi – Acc. No. MT432023; Glyptapanteles pallipes Acc. No. KJ459198.
Figure 2 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 2 A condensed Bayesian tree inferred from the CO1 barcoding fragments of Cotesia specimens. Bayesian posterior probabilities are shown above branches; scale bar indicates substitutions per site (0.02). Potential scale reduction factors (PSRF) were all approximately equal to one. Description of CotesiaCO1 barcode sequences included in the analysis is given in Suppl. material 1: table S1. Outgroups: Aphidius sussi – Acc. No. MT432023; Glyptapanteles pallipes Acc. No. KJ459198.
Figure 1 from: Žikić V, Mitrović M, Stanković SS, Fernández-Triana JL, Lazarević M, van Achterberg K, Marczak D, Milošević MI, Shaw MR (2024) An integrative taxonomic study of north temperate Cotesia Cameron (Hymenoptera, Braconidae, Microgastrinae) that form silken cocoon balls, with the description of a new species. Journal of Hymenoptera Research 97: 255-276. https://doi.org/10.3897/jhr.97.116378
Figure 1 Aggregated ball-like cocoon A cooperative work of all parasitoid larvae in spinning the cocoon mass (C. vanessae ex Aglais urticae) B spun cocoon mass (C. tibialis ex Mythimna conigera).
Supplementary material 2 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
PCR primers and conditions used in this study
Supplementary material 3 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Fasta and Nexus files for the analysis in this study
Supplementary material 1 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Sequences used in this study
Figure 7 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Figure 7 Maximum likelihood phylogenetic trees of Ichneumoninae reconstructed using the COI and 28S datasets (COI: 648 bp; GTR+F+I+G4 [1–648\3 and 2–648\3 bp]; HKY+F+I+G4 [3–648\3 bp]; 28S: 625 bp; GTR+F+I+G4 [1–625 bp]). The red and blue colors indicate Phaeogenini and Alomyini, respectively. Branch lengths of the phylogenetic trees are proportional to the infer number of nucleotide substitutions per site, except for the branch of the outgroup Agriotypus armatus. Circles on the nodes indicate different SH-aLRT/UFBoot values. Nodal support with an SH-aLRT value of <80% and a UFBoot value of <95% is not shown. Abbreviations: SH-aLRT, SH-like approximate likelihood ratio test; UFBoot, ultrafast bootstrap approximation; XOR, one or the other but not both.
Figure 4 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Figure 4 Characters of two Pseudalomya species. Frontal horns: APseudalomya truncaticornis sp. nov. (holotype, NMNS ENT 8836-1) BPseudalomya nepalensis (holotype, SDEI). Faces: CP. truncaticornis sp. nov. (holotype, NMNS ENT 8836-1) DP. nepalensis (holotype, SDEI) E darker specimen of P. truncaticornis sp. nov. (paratype, NMNS ENT 8836-2), dorsal view of the head F darker specimen of P. truncaticornis sp. nov. (paratype, NMNS ENT 8836-2), lateral view of the head. Illustrated and photographed by Hsuan-Pu Chen (A–C, E, F) and Matthias Riedel (D).
Figure 6 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Figure 6 Maximum likelihood phylogenetic tree of Ichneumoninae reconstructed using the concatenated 18S+28S+COI dataset (2575 bp; 18S: 1302 bp; 28S: 625 bp; COI: 648 bp; SYM+I+G4 [1–1302, 1303–1927, 1928–2575\3, and 1929–2575\3 bp]; HKY+F+I+G4 [1930–2575\3 bp]). The red and blue colors indicate Phaeogenini and Alomyini, respectively. Branch lengths of the phylogenetic tree are proportional to the infer number of nucleotide substitutions per site, except for the branch of the outgroup Agriotypus armatus. Circles on the nodes indicate different SH-aLRT/UFBoot values. Nodal support with an SH-aLRT value of <80% and a UFBoot value of <95% is not shown. Abbreviations: SH-aLRT, SH-like approximate likelihood ratio test; UFBoot, ultrafast bootstrap approximation; XOR, one or the other but not both.
Figure 5 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Figure 5 Habitat of Pseudalomya truncaticornis sp. nov. in Mount Huoshi (24°22'47.78"N, 121°10'53.67"E DMS), Shei-Pa National Park. Photographed by Ta-Hsiang Lee.
Figure 3 from: Chen H-P, Kikuchi N, Shiao S-F (2024) Discovery of a new Pseudalomya Telenga, 1930 (Hymenoptera, Ichneumonidae, Ichneumoninae) species from Taiwan and its implications for the systematic position of this genus. Journal of Hymenoptera Research 97: 277-296. https://doi.org/10.3897/jhr.97.119470
Figure 3 Pseudalomya truncaticornis sp. nov., NMNS ENT 8836-1 (A), NMNS ENT 8836-2 (B), and NARO (C) A lateral view of the mesosoma B wings C metasomal sternites. Photographed by Hsuan-Pu Chen (A, B) and Namiki Kikuchi (C).
ScienceDex guides
Understand access before you commit
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.