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Fig. 11 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 11. Dendronephthya flabellifera (Studer, 1888), NMBE-299. A, Sclerites from surface layer of middle part of stalk; B, sclerites from interior of middle part of stalk; C, detail of uppermost part of such a sclerite; D, flattened radiates from interior of middle part of stalk. Scales: 0.10 mm (A, C, D); 1.0 mm (B).
Fig. 20 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 20. Dendronephthya rigida (Studer, 1888), NMBE-308. A, Spindles from surface layer of upper part of stalk; B, detail of uppermost part of such a spindle; C, detail of lowermost part of such a spindle; D, E, spindles from interior of upper part of stalk; F, flattened radiates from interior of upper part of stalk; G, flattened rods from interior of upper part of stalk. Scales: 1.0 mm (A, D); 0.10 mm (B, C, E–G).
Fig. 25 in Redescriptions of Five Species of Japanese Dendronephthya (Octocorallia: Alcyonacea) Based on Type Material Collected by Döderlein in 1879-81
Fig. 25. Color photographs of the specimens examined. A, ZMB-6597, Dendronephthya pumilio (Studer, 1888) sensu Kükenthal (1905); B, ZMB-6598, D. pumilio (Studer, 1888) sensu Kükenthal (1905); C, ZSM-20061084, D. pumilio (Studer, 1888) sensu Kükenthal (1905); D, NSMT-CoR-62, D. pumilio (Studer, 1888) sensu Utinomi (1962); E, RMNH-2926, "D. pumilio" sensu Sherriffs (1912) and Thomson and Dean (1931); F, NMBE-308, D. rigida (Studer, 1888); G, NMBE-308, enlargement of D. rigida (Studer, 1888), showing branching mode; H, ZMB6602, D. rigida (Studer, 1888) sensu Kükenthal (1905); I, D. rigida (Studer) sensu Kükenthal, 1905, (ZSM); J, ZMUC, D. rigida sensu Tixier-Durivault and Prevorsek (1960); K, USNM-30113, D. splendens sensu Nutting (1912).
Figs 21–23. Halyomorpha Mayr, 1866 in Halyomorpha halys fixed as the type species of the genus Halyomorpha (Hemiptera: Heteroptera: Pentatomidae)
Figs 21–23. Halyomorpha Mayr, 1866, external female genitalia in ventrolateral view (angle on posterior margin of lt8 shown by red arrows): 21 – H. halys (Stål, 1855), Czech Republic: Praha, botanical garden of the Charles University; 22 – H. picus (Fabricius, 1794), Pakistan: Islamabad, National Institute of Health colony; 23 – H. timorensis (Westwood, 1837), syntype. Abbreviations: lt8–9 – laterotergites 8–9. Orig. P. Kment.
Figs 15–17. Halys timorensis Westwood, 1837 in Halyomorpha halys fixed as the type species of the genus Halyomorpha (Hemiptera: Heteroptera: Pentatomidae)
Figs 15–17. Halys timorensis Westwood, 1837, female syntype (OXUM) (body length 15.4 mm): 15 – dorsal view, 16 – ventral view, 17 – labels. Orig. P. Kment.
Figs 1–3 in Halyomorpha halys fixed as the type species of the genus Halyomorpha (Hemiptera: Heteroptera: Pentatomidae)
Figs 1–3. Specimens of Halyomorpha Mayr, 1864 from Mayr collection (NHMW): 1 – Halyomorpha halys (Stål, 1855), male (body length 12.80 mm); 2 – Halyomorpha picus (Fabricius, 1794), male (14.63 mm); 3 – labels. Orig. P. Kment.
Figure 4 from: Lee Y, Park J-K (2022) Complete mitochondrial genome of Conus lischkeanus Weinkauff, 1875 (Neogastropoda, Conidae) and phylogenetic implications of the evolutionary diversification of dietary types of Conus species. ZooKeys 1088: 173-185. https://doi.org/10.3897/zookeys.1088.78990
Figure 4 Phylogenetic relationships of the genus Conus based on concatenated nucleotide sequences (13 protein coding genes plus two rRNA genes). Numbers above branches are statistical support values for ML (bootstrap values, > 70)/BI (posterior probability values, > 0.7). *: determined in this study.
Figure 2 from: Lee Y, Park J-K (2022) Complete mitochondrial genome of Conus lischkeanus Weinkauff, 1875 (Neogastropoda, Conidae) and phylogenetic implications of the evolutionary diversification of dietary types of Conus species. ZooKeys 1088: 173-185. https://doi.org/10.3897/zookeys.1088.78990
Figure 2 The relative synonymous codon usage (RSCU) frequency of the mitochondrial genome of Conus lischkeanus.
FIGURE 1 in Description of Maghreboniscus rojasi sp. nov. from Southern Spain and validation of the genus by the designation of a type species (Isopoda: Oniscidea: Spelaeoniscidae)
FIGURE 1. Maghreboniscus rojasi sp. nov., female paratype.
Supplementary material 3 from: Bernardo-Madrid R, González-Moreno P, Gallardo B, Bacher S, Vilà M (2022) Consistency in impact assessments of invasive species is generally high and depends on protocols and impact types. In: Giannetto D, Piria M, Tarkan AS, Zięba G (Eds) Recent advancements in the risk screening of freshwater and terrestrial non-native species. NeoBiota 76: 163-190. https://doi.org/10.3897/neobiota.76.83028
Figure S1
Supplementary material 2 from: Bernardo-Madrid R, González-Moreno P, Gallardo B, Bacher S, Vilà M (2022) Consistency in impact assessments of invasive species is generally high and depends on protocols and impact types. In: Giannetto D, Piria M, Tarkan AS, Zięba G (Eds) Recent advancements in the risk screening of freshwater and terrestrial non-native species. NeoBiota 76: 163-190. https://doi.org/10.3897/neobiota.76.83028
Impact assessments and function to calculate G coefficient
Supplementary material 1 from: Bernardo-Madrid R, González-Moreno P, Gallardo B, Bacher S, Vilà M (2022) Consistency in impact assessments of invasive species is generally high and depends on protocols and impact types. In: Giannetto D, Piria M, Tarkan AS, Zięba G (Eds) Recent advancements in the risk screening of freshwater and terrestrial non-native species. NeoBiota 76: 163-190. https://doi.org/10.3897/neobiota.76.83028
Tables S1–S13
Fig. 5 in Cuticular Hydrocarbon Profile Analyses Help Clarify the Species Identity of Dry-Mounted Cuckoo Wasps (Hymenoptera: Chrysididae), Including Type Material, and Reveal Evidence for a Cryptic Species
Fig. 5. Holotype (female) of Chrysis parabrevitarsis n. sp. (Voucher ID: ZFMK- TIS-36619).
Figures 14-19 from: Zonstein SL, Marusik YM, Omelko MM (2016) Redescription of the type species of Diaphorocellus Simon, 1893 (Araneae, Palpimanidae, Chediminae). African Invertebrates 57(2): 93-103. https://doi.org/10.3897/AfrInvertebr.57.9988
Figures 14-19 - Details of male palp of Diaphorocellus biplagiatus. 14, 17–18 cymbium and bulb, prolateral, ventro-prolateral (from above) and retrolateral 15 bulb, prolateral 16 femur and tibia, ventral 19 trochanter, femur and patella, retrolateral. Abbreviations: Ce base of cymbium encircling bulb; Cs strong cymbial setae; Em "embolus"; Mo membranous outgrowth; So sclerotised outgrowth.
Figures 8-13 from: Zonstein SL, Marusik YM, Omelko MM (2016) Redescription of the type species of Diaphorocellus Simon, 1893 (Araneae, Palpimanidae, Chediminae). African Invertebrates 57(2): 93-103. https://doi.org/10.3897/AfrInvertebr.57.9988
Figures 8-13 - Diaphorocellus biplagiatus. 8 eye pattern in female, dorsal 9 epigastric scutum, female, ventral 10 epigastric scutum after maceration, caudal view 11–13 male palp, prolateral, ventro-prolateral and retrolateral. Abbreviations: Bs sclerite opposite to book lungs; Cs strong cymbial setae; Em "embolus"; Gg grape-shaped gland; Ls lateral sclerite; Mo membranous outgrowth; Ms median sclerite; Re receptacle; So sclerotised outgrowth.
Figures 1-7 from: Zonstein SL, Marusik YM, Omelko MM (2016) Redescription of the type species of Diaphorocellus Simon, 1893 (Araneae, Palpimanidae, Chediminae). African Invertebrates 57(2): 93-103. https://doi.org/10.3897/AfrInvertebr.57.9988
Figures 1-7 - Habitus of Diaphorocellus biplagiatus male (1, 4–5, 7) and female (2–3, 6). 1, 3 entire body, dorsal 2, 7 prosoma and anterior part of abdomen, ventral 5–6 prosoma, dorsal.
Figure 27 from: Zonstein SL, Marusik YM, Omelko MM (2016) Redescription of the type species of Diaphorocellus Simon, 1893 (Araneae, Palpimanidae, Chediminae). African Invertebrates 57(2): 93-103. https://doi.org/10.3897/AfrInvertebr.57.9988
Figure 27 - Distribution of Diaphorocellus biplagiatus. The type locality (open circle) and new records listed in the text (solid circles).
Figures 20-26 from: Zonstein SL, Marusik YM, Omelko MM (2016) Redescription of the type species of Diaphorocellus Simon, 1893 (Araneae, Palpimanidae, Chediminae). African Invertebrates 57(2): 93-103. https://doi.org/10.3897/AfrInvertebr.57.9988
Figures 20-26 - Details of endogyne of Diaphorocellus biplagiatus. 20 dorsal 21 basal part, caudal-dorsal 22 grape-shaped glands 23 base of receptacles, dorsal 24 tip of base showing cilia 25 lateral part of receptacle base showing grape-shaped glands and fine threads 26 terminal part of receptacle base 21–26 made by transmitting microscope. Abbreviations: Cg cilia of Gg; Da dark area of Sb; Ft fine threads; Gg grape-shaped gland; Rs membranous sac like part of Re; Sb complex sclerotised base of Re.
Figure 11 from: Breure A (2011) Annotated type catalogue of the Orthalicoidea (Mollusca, Gastropoda) in the Royal Belgian Institute of Sciences, Brussels, with descriptions of two new species. ZooKeys 101: 1-50. https://doi.org/10.3897/zookeys.101.1133
Figure 11 - Bostryx species. A, i Bostryx bonneti (Ancey, 1902), paralectotype RBINS/MT2338 (H=21.9). B, ii Bostryx emaciatus (Morelet, 1863), paralectotype RBINS/MT2349 (H=18.3). C, iii Bostryx baeri (Dautzenberg, 1901), paralectotype RBINS/MT2336 (H=13.6). D, iv Bostryx iocosensis (Dautzenberg, 1901), paralectotype RBINS/MT2355 (H=11.3). E, v Bostryx spiculatus (Morelet, 1860), probable syntype RBINS/MT2373 (H=21.3). F, vi Bostryx veruculum (Morelet, 1860), probable syntype RBINS/MT2374 (H=21.9). G, vii Bostryx moniezi (Dautzenberg, 1901), syntype RBINS/MT1830 (H=13.9). H, viii Bostryx huayaboensis (Dautzenberg, 1901), paralectotype RBINS/MT2354 (H=22.9). I, ix Bostryx orophilus (Morelet, 1860), syntype of albicolor Morelet, 1863 RBINS/MT2335 (H=22.2).
Figure 13 from: Breure A (2011) Annotated type catalogue of the Orthalicoidea (Mollusca, Gastropoda) in the Royal Belgian Institute of Sciences, Brussels, with descriptions of two new species. ZooKeys 101: 1-50. https://doi.org/10.3897/zookeys.101.1133
Figure 13 - Drymaeus species. A, i Drymaeus (Drymaeus) jousseaumei (Dautzenberg, 1901), paralectotype RBINS/MT2356 (H=47.6). B, ii Drymaeus (Drymaeus) scolioides (Dautzenberg, 1901), paralectotype RBINS/MT2377 (H=40.7). C, iii Drymaeus (Drymaeus) solidus (Preston, 1907), syntype RBINS/MT2259 (H=33.8).
ScienceDex guides
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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.