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zenodo40/100

Fig. 13. Hoplocryptus sumiyona Uchida, 1956 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 13. Hoplocryptus sumiyona Uchida, 1956 (A-C, KPM-NK 76581) and H. toshimensis sp. nov. (E-I, KPM-NK 75797) ― A, E, dorsal habitus; B, F, head, frontal view; C, head and mesosoma, dorso-lateral view; D, lateral habitus; G, propodeum, dorsal view; H, right fore wing; I. metasoma, dorsal view.

opencc-by-4.0Mar 2020View details →
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Fig. 12 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 12. Hoplocryptus pini (Momoi, 1973) (A, D, F, KPM-NK 76578; B, E, KPM-NK 75780; C, G, KPM-NK 75774; H-J, 76580) ― A-C, H, lateral habitus; D, E, I, head, mesosoma and metasoma, dorsal view; F, J, head, frontal view; G, propodeum, dorsso-lateral view.

opencc-by-4.0Mar 2020View details →
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Fig. 10 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 10. Hoplocryptus ezoensis sp. nov. (A, C-F, KPM-NK 75799; B, KPM-NK 75802) and Ho. intermedius sp. nov. (G-K, KPM-NK 75806; L, M, KPM-NK 76582) ― A, G, L, lateral habitus; B, C, dorsal habitus; D, H, M, head, frontal view; E, J, propodeum, dorsal (E) and dorso-lateral (J) view; I, head and mesoscutum, dorso-lateral view; K, right fore wing.

opencc-by-4.0Mar 2020View details →
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Fig. 6. Caenocryptoides convergens Momoi, 1966 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 6. Caenocryptoides convergens Momoi, 1966 (A-C, TMNH) and Cryptus daidaigaster sp. nov. (D-J, NIAES) ― A, D, I, lateral habitus; B, E, head, mesosoma and metasoma, dorso-lateral view; C, F, J, head, frontal view; G, propodeum, dorsal view; H, right wings.

opencc-by-4.0Mar 2020View details →
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Fig. 2 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 2. Aritranis kuro sp. nov. (A, B, KPM-NK 75832); Buathra nipponica sp. nov. (C, D, KPM-NK 75746), Glabridorsum japonicum sp. nov. (E, KPM-NK 75742), Hoplocryptus ezoensis sp. nov. (F, KPM-NK 75799), Ho. intermedius sp. nov. (G, KPM-NK 75804), Ho. japonicus sp. nov. (H, KPM-NK 75771), Ho. maculatus sp. nov. (I, KPM-NK 75790, J, KPM-NK 75781, K, KPM-NK 75783), Hylophasma luica Sheng, Li & Wang, 2019 (L, M, KPM-NK 75813) and Trychosis breviterebratus sp. nov. (N, KPM-NK 75748), females ― A, F, G, H, M, propodeum and T I, dorsal (A, H, M) and lateral (F, G) view; B, E, L, T I, lateral view; C, I, propodeum, lateral (C) and dorsal (I) view; D, T I, lateral view; J, K, area basalis and part of anterior transverse carina of propodeum; N, metasoma, lateral view. Surface sculpture of right half of Fig. 2A omitted.

opencc-by-4.0Mar 2020View details →
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Fig. 1 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 1. Aritranis kuro sp. nov. (A, KPM-NK 75838); Buathra nipponica sp. nov. (B, C, KPM-NK 75746), Hoplocryptus ezoensis sp. nov. (D, KPM-NK 75799), Ho. ashoroensis sp. nov. (E, NIAES), Ho. intermedius sp. nov. (F, KPM-NK 75804), Ho. japonicus sp. nov. (G, KPM-NK 75771), Ho. maculatus sp. nov. (H, KPM-NK 75781), Ho. toshimensis sp. nov. (I, KPM-NK 75797), Hylophasma luica Sheng, Li & Wang, 2019 (J, K, KPM-NK 75813) and Trychosis breviterebratus sp. nov. (L-P, KPM-NK 75748), females ― A-D, J-M, head, frontal (A, B, D, J, L), lateral (C) and dorsal (K, M) view; E-I, apical margin of clypeus, frontal view; K, left mandible; O, left fore femur, anterior view; lower part of epicnemial carina, lateral view.

opencc-by-4.0Mar 2020View details →
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Fig. 5 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 5. Buathra nipponica sp. nov. (A-G, KPM-NK 75746; H, I, KPM-NK 75747) ― A, lateral habitus; B, mesosoma, lateral view; C, head, mesosoma and metasoma, dorsal view; D, frons, frontal view; E, propodeum, dorsal view; F, right fore wing; G, apex of metasoma, dorso-lateral view.

opencc-by-4.0Mar 2020View details →
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Fig. 9 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 9. Gotra elegans sp. nov. (A, C, D, KPM-NK 75822; B, E, KPM-NK 75823) and Hoplocryptus ashoroensis sp. nov. (F-J, NIAES) ― A, C, lateral habitus; B, dorsal habitus; C, H, head, frontal view; D, head, mesoscutum and scutellum, dorsal view; E, I, propodeum, dorsal view; J, right fore wing.

opencc-by-4.0Mar 2020View details →
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Fig. 4. Agrothereutes minousubae Nakanishi, 1965 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 4. Agrothereutes minousubae Nakanishi, 1965 (A, B, KPM-NK 76585; C, D, KPM-NK 76590) and Aritranis kuro sp. nov. (E, G, I, KPM-NK 75824; F, H, KPM-NK 75825; J, K, KPM-NK 76577) ― A, C, E, J, lateral habitus; B, tegula and humeral plate (red arrow), dorso-lateral view; D, G, K, head, frontal view; F, dorsal habitus; H, propodeum, dorsal view; I, right wings.

opencc-by-4.0Mar 2020View details →
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Fig. 7. Gambrus homonae Sonan, 1930 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 7. Gambrus homonae Sonan, 1930 (A, KPM-NK 76572; B-D, 76568; E, KPM-NK 76573) ― A, E, lateral habitus; B, head, frontal view; C, propodeum, dorsal view; D, right fore wing.

opencc-by-4.0Mar 2020View details →
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Fig. 3 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 3. Aritranis kuro sp. nov. (A, KPM-NK 75838), Buathra nipponica sp. nov. (B, KPM-NK 75746), Cryptus daidaigaster sp. nov. (C, NIAES), Gambrus homonae Sonan, 1930 (D, KPM-NK 76566); Glabridorsum japonicum sp. nov. (E, KPM-NK 75742), Gotra elegans sp. nov. (F, KPM-NK 75822); Hoplocryptus ashoroensis sp. nov. (G, NIAES), Ho. ezoensis sp. nov. (H, KPM-NK 75800), Ho. intermedius sp. nov. (I, KPM-NK 75804), Ho. japonicus sp. nov. (J, KPM-NK 75771), Ho. maculatus sp. nov. (K, KPM-NK 75781), Ho. pini (L, KPM-NK 76579), Ho. toshimensis sp. nov. (M, KPM-NK 75797), Picardiella melanoleuca (Gravenhorst, 1829) (N, KPM-NK 75744) and Trychosis breviterebratus sp. nov. (N, KPM-NK 75758), apex of ovipositor, lateral view.

opencc-by-4.0Mar 2020View details →
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Fig. 8 in Expression of green fluorescent protein defines a specific population of lamina II excitatory interneurons in the GRP::eGFP mouse

Fig. 8. Glabridorsum japonicum sp. nov. (A, C, E, G, KPM-NK 75742; B, D, F, KPM-NK 75743) ― A, lateral habitus; B, head, mesosoma and metasoma, dorsal view; C, D, mesosoma, lateral view; E, head, frontal view; F, propodeum, dorsal view; G, apical part of right fore wing.

opencc-by-4.0Mar 2020View details →
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Figure 1 in Phylogeny and ecology of the green seaweed Ulva

Figure 1: The highlights of Ulva research can be divided into three main research areas, which are reflected in this special edition.

opencc-by-4.0Feb 2024View details →
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Рис. 1. Sicista betulina: 1 — Λесная мышовка, пойманная в окрестностях сеΛа КойÀа; 2 — карта распространения виÀа: зеΛеная заΛивка — ареаΛ виÀа по Burgin et al. 2020, синие звезÀочки — точки нахоÀок в национаΛьном парке «Онежское Поморье» и на СоΛовецком архипеΛаге (Черенкова 2014), красный круг — новая нахоÀка в районе Àеревни КойÀа; 3–4 — биотопы, в которых быΛ встречен виÀ в окрестностях сеΛа КойÀа Fig. 1. Sicista betulina: 1 — the northern birch mouse caught in the vicinity of Koida village; 2 — the species distribution map: the green fill — species range according to Burgin et al. 2020; the blue stars — points where the species was found in the Onezhskoye Pomorye National Park and on the Solovetsky Archipelago (Cherenkova 2014); the red circle — a new find in the area of Koida village; 3–4 — biotopes in which the species was encountered in the vicinity of Koida village in A new record of the northern birch mouse Sicista betulina (Pallas, 1779) in the north of the Arkhangelsk Region (Rodentia: Sminthidae)

Рис. 1. Sicista betulina: 1 — Λесная мышовка, пойманная в окрестностях сеΛа КойÀа; 2 — карта распространения виÀа: зеΛеная заΛивка — ареаΛ виÀа по Burgin et al. 2020, синие звезÀочки — точки нахоÀок в национаΛьном парке «Онежское Поморье» и на СоΛовецком архипеΛаге (Черенкова 2014), красный круг — новая нахоÀка в районе Àеревни КойÀа; 3–4 — биотопы, в которых быΛ встречен виÀ в окрестностях сеΛа КойÀа Fig. 1. Sicista betulina: 1 — the northern birch mouse caught in the vicinity of Koida village; 2 — the species distribution map: the green fill — species range according to Burgin et al. 2020; the blue stars — points where the species was found in the Onezhskoye Pomorye National Park and on the Solovetsky Archipelago (Cherenkova 2014); the red circle — a new find in the area of Koida village; 3–4 — biotopes in which the species was encountered in the vicinity of Koida village

opencc-by-4.0Dec 2021View details →
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Datasets for the Results of Scratch Tests of Green Wood and Results of Scratch Tests of Timber Components (D2.1) and Output Database for Selected Wood Parts and Timber Components: Moisture Contents and Temperatures, Moisture Induced Strains and Stresses and Crack Risk (D2.2) of 5G-TIMBER EU Project

<p>7 June 2024: added D2.2_data_statistics.zip and D2.2_analysis_results.zip, which are the datasets for D2.2 "<span>Output Database for Selected Wood Parts and Timber Components: Moisture Contents and Temperatures,&nbsp;Moisture Induced Strains and Stresses and Crack Risk" of the Horizon Europe Innovation Action project "5G-TIMBER: Secure 5G-Enabled Twin Transition for Europe's TIMBER Industry Sector" (project reference: 101058505).</span></p> <p>D2.2 presents the Hygro-Thermo-Mechanical (HTM)&nbsp;models and the finite element (FE) analyses of selected wooden&nbsp;components that use the material properties of wood presented in&nbsp;deliverable D2.1 "Input database for selected wood parts and timber components: material properties, representative environmental conditions,<br>and loads" (see below).&nbsp;</p> <p>------</p> <p>Figures_22_23_24_25.xlsx : Results of Scratch Tests of Green Wood</p> <p>corrected_Figures_26_27_28_29_30.xlsx : Results of results of Scratch Tests of Timber Components (new version, uploaded on 26 October 2023)</p> <p>This dataset consists of 2 Excel files that correspond to the scratch test results&nbsp;reported in the&nbsp;deliverable D2.1 "Input Database for Selected Wood Parts and Timber Components: Material Properties, Representative Environmental Conditions and Loads" of the Horizon Europe Innovation Action project "5G-TIMBER: Secure 5G-Enabled Twin Transition for Europe's TIMBER Industry Sector" (project reference: 101058505).</p> <p>The purpose of D2.1, to which this dataset is related, is to present the input data needed for the Hygro-Thermo-Mechanical (HTM) models and the related finite element (FE) analyses planned for a follow-up deliverable, i.e., the D2.2. (Output Database for Selected Wood Parts and Timber Components: Moisture Contents and Temperatures, Moisture Induced Strains And Stresses And Crack Risk). The data include the material properties for green wood and selected wooden components, as well as the plans to collect environmental conditions and loads to be considered in the analyses for prediction of the crack risk of timber components under moisture variations. In additions, new results of scratch tests of wood and wooden components, supported by computed tomography (CT) investigations, are collected to define a model for shear failure risk to be added to the HTM computational models.</p> <p>In D2.1, scratch tests carried out at VTT are described and their results are collected to provide information about the moisture effects of wood logs during cutting operations in sawmills, as well as on relevant fracture and shear properties for wooden components in sawing centres before using them to produce wooden elements of modular buildings in the production. The scratch tests are supported by CT tomography investigations and these results are also reported in the deliverable.</p> <p>D2.1 is available here: <a title="Deliverable D2.1 &quot;Input Database for Selected Wood Parts and Timber Components: Material Properties, Representative Environmental Conditions and Loads&quot; " href="../records/10577505" target="_blank" rel="noopener">https://zenodo.org/records/10577505</a>&nbsp;</p>

opencc-by-4.0Jun 2024View details →
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Figure 1. Response curves for percent acetyl-coenzyme A in Detecting the effect of ACCase-targeting herbicides on ACCase activity utilizing a malachite green colorimetric functional assay

Figure 1. Response curves for percent acetyl-coenzyme A carboxylase (ACCase) activities of resistant and susceptible Digitaria ciliaris biotypes in response to the increasing concentrations of the ACCase-targeting herbicides, sethoxydim, clethodim,fluazifop-p-butyl, and pinoxaden.The response was modeled based on the log rate of ACCase-targeting herbicides to create equal spacing between rates using least-squares fit regression of ACCase activity to the non-treated check. Means are represented by differing symbols for each biotype, and regression equation models are represented by differing line types for each biotype. Vertical bars represent the standard errors of the means (n = 6). Digitaria ciliaris biotypes: R1 and R2, resistant; S, susceptible. The concentration of ACCase-targeting herbicides required to cause 50% inhibition of ACCase activity (IC50) was calculated from concentration-response curves. CI, confidence interval.

opencc-by-4.0Aug 2021View details →
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Figure 2. Tree heliotrope growing along a in Of turtles and trees: Nutritional analysis of tree heliotrope (Heliotropium foertherianum) leaves consumed by green turtles (Chelonia mydas) in Hawaiʻi

Figure 2. Tree heliotrope growing along a seawater canal at Nan Madol, Pohnpei, FSM. Photo by Gregory A. Koob, US FWS, 2016

opencc-by-4.0Feb 2018View details →
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Figure 1 in Of turtles and trees: Nutritional analysis of tree heliotrope (Heliotropium foertherianum) leaves consumed by green turtles (Chelonia mydas) in Hawaiʻi

Figure 1. Green turtle consuming floating, senescent tree heliotrope leaves in the Hilton Waikoloa Lagoon, Kona, Hawaiʻi. Photo by M. Rice

opencc-by-4.0Feb 2018View details →
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Figure 7. 2007-2008 in Conservation considerations revealed by the movements of post-nesting green turtles from the Republic of the Marshall Islands

Figure 7. 2007-2008 post-nesting movement of a 101 cm CCL green turtle ID 40702, "Loj5", from Erikub Atoll, Republic of the Marshall Islands to pelagic waters east of Erikub. Loj5 traveled a total distance of 4,212 km, in the 278 days the satellite tag transmitted.

opencc-by-4.0Dec 2015View details →
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Figure 6. 2007 in Conservation considerations revealed by the movements of post-nesting green turtles from the Republic of the Marshall Islands

Figure 6. 2007 post-nesting movement of a 100 cm CCL green turtle ID 40605, "Loj4", from Erikub Atoll, Republic of the Marshall Islands to Pohnpei, Federated States of Micronesia. Loj4 traveled a total distance of 4,039 km, in the 162 days the satellite tag transmitted.

opencc-by-4.0Dec 2015View details →

ScienceDex guides

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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

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.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record