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540 results for “Denmark”
Fig. 2. A–C. Helodiomyces elegans F.Picard. A in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 2. A–C. Helodiomyces elegans F.Picard. A. Mature thallus with labelling of cells VI, VI' and VII. B–C. Details of perithecium, including ligules (li) in C. – D. Autoicomyces aquatilis (F.Picard) I.I.Tav.; mature thallus showing the perithecial outgrowth (arrow). – E. Autoicomyces humilis (Thaxt.) Thaxt.; mature thallus at the base of a host claw, and a sporeling on the right. – F–H. Ceratomyces pyrenaeus Santam.; mature thalli showing labelled perithecial excrescences (arrows in G). Scale bars: 50 µm. Photographs from slides ZMUC C-F-122583 (A–C), ZMUC C-F-122567 (D), ZMUC C-F-122566 (E), ZMUC C-F-123551 (F), and ZMUC C-F-123550 (G–H).
Fig. 5. Compsomyces spp. A–B. C. lestevae Thaxt. A in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 5. Compsomyces spp. A–B. C. lestevae Thaxt. A. Mature thallus showing antheridium (an) and perithecial wall cells (arrows). B. Immature thallus showing antheridium (an). – C–E. C. verticillatus (Thaxt.) Thaxt. C–D. Mature thalli. E. Detail of perithecium labelling eight wall cells (arrows). Scale bars: A–D = 50 µm; E = 20 µm. Photographs from slides ZMUC C-F-122939 (A–B), and ZMUC C-F-124184 (C–E).
Fig. 20. Chitonomyces spp. A–B. C in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 20. Chitonomyces spp. A–B. C. aculeifer Speg. Mature thalli with labelling of cells and other parts of the thallus, i.e., cells I, Ia, II, IIa, III, IIIa, VI, antheridium (an), primary appendage (pa) and perithecial outgrowth (arrow). A. From Graptodytes. B. From Haliplus. – C –D. C. bidessarius (Thaxt.) Thaxt. Mature thalli with labelling of cells of the thallus, i.e., cells I, Ia, II, IIa, III, and IIIa. – E–F. C. elongatus Speg. E. Thallus from a female host. F. Thallus from a male host. – G. C. ensifer Speg. Mature thallus showing prominent cell VI and perithecial outgrowth (arrow). Scale bars: 50 µm. Photographs from slides ZMUC C-F-123553 (A), ZMUC C-F-124083 (B), ZMUC C-F-122816 (C–D), ZMUC C-F-124060 (E), ZMUC C-F-124061 (F), ZMUC C-F-123670 (G).
Fig. 12. Siemaszkoa spp. A–E. S in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 12. Siemaszkoa spp. A–E. S. fennica Huldén. A–B. Mature thalli. C. Unusual thallus with two perithecia. D. Detail of a mature thallus showing antheridia (arrows). E. Short thallus from legs. – F–I. S. flexa (T.Majewski) I.I.Tav. & T.Majewski. F–G. Mature thalli. H. Detail of foot. I. Detail of an immature thallus showing antheridia (arrows). Scale bars: A–C, E–G = 50 µm; D, H–I = 20 µm. Photographs from slides ZMUC C-F-122949 (A), ZMUC C-F-123248 (B), ZMUC C-F-123466 (C), ZMUC C-F-123309 (D), ZMUC C-F-123582 (E), ZMUC C-F-123632 (F–G), ZMUC C-F-123583 (H–I).
Fig. 16. Microsomyces psammoechi Thaxt. A in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 16. Microsomyces psammoechi Thaxt. A. General habitus with several thalli corticating on host integument. B. Three sporelings with labelled receptacle cells (I, II, and III), the primary septum (a), and a primary antheridium (an). C. Ascospore. D. Young thallus showing cell I, one corticated cell (cc), and the primary antheridium (an) with spinose remaining of ascospore apex (sx). E–F. Haustoria penetrating the host body (arrows). Scale bars: A, D–F = 50 µm; B = 20 µm; C = 25 µm. Photographs from slides ZMUC C-F-124046 (A, C–F), ZMUC C-F-123679 (B).
Fig. 4. A–D. Euzodiomyces lathrobii Thaxt. A–B. Reduced forms. C. Typical form. D in Laboulbeniomycetes (Fungi, Ascomycota) of Denmark
Fig. 4. A–D. Euzodiomyces lathrobii Thaxt. A–B. Reduced forms. C. Typical form. D. Labelling of a secondary axis, with antheridia (an) and perithecial initial with cell VII. – E. Zodiomyces vorticellarius Thaxt.; with labelled cell I and buffer projections (bf). – F. Coreomyces arcuatus Thaxt.; mature thallus. – G. Coreomyces corixae Thaxt.; mature thallus showing the appendiculate cells (ac). – H. Coreomyces macropus Thaxt.; mature thallus. Scale bars: A–C, E–H = 50 µm; D = 25 µm. Photographs from slides ZMUC C-F-123138 (A–B), ZMUC C-F-124066 (C), ZMUC C-F-122479 (D), ZMUC C-F-122570 (E), ZMUC C-F-124285 (F), ZMUC C-F-123723 (G), and ZMUC C-F-123722 (H).
FIG. 10 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 10. — Holotype of Xanthopimpla ciboisae n. sp. (FUR-10046), photograph and interpretative drawing, where dotted lines represent uncertain and/or interpolated interpretations. Scale bar: 2 mm.
FIG. 7 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 7. — Specimens of Epitheronia stigmatica (Henriksen, 1922), n. comb.: A, C, holotype, deposited at the Natural History Museum in Copenhagen; B, D, specimen MOL-MM-3141. Photographs (A, B), detail (E) and interpretative drawings (B, D), where dotted lines represent uncertain and/or interpolated interpretations. Scale bars: 2 mm.
FIG. 4 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 4. — Holotype of Crusopimpla minuta n. sp. (FUR-13076), photograph (A), detail (B) and interpretative drawing (C), where dotted lines represent uncertain and/or interpolated interpretations. Scale bars: A, C, 1 mm; B, 0.5 mm.
FIG. 3 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 3. — Holotype of Crusopimpla elongata n. sp. (FUR-11220), photograph (A) and interpretative drawing (B), where dotted lines represent uncertain and/or interpolated interpretations. Scale bar: 1 mm.
FIG. 9 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 9. — Holotype of Theronia? nigriscutum n. sp. (MOL-MHM-5412), photograph (A) and interpretative drawing (B), where dotted lines represent uncertain and/ or interpolated interpretations. Scale bar: 2 mm.
FIG. 2 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 2. — Holotype of Crusopimpla collina n. sp. (FUR-14680), photograph (A), detail (B) and interpretative drawing (C), where dotted lines represent uncertain and/or interpolated interpretations; D, wing vein names on photographs of the extant Darwin wasp Rhimphoctona obscuripes (Holmgren, 1860). Scale bars: A, C, 2 mm; B, 200 µm.
FIG. 8 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 8. — Holotype of Theronia? furensis n. sp. (FUR-11207), photograph (A) and interpretative drawing (B), where dotted lines represent uncertain and/or interpolated interpretations. Blue lines indicate a fossil Diptera which is partly overlaying the Darwin wasp fossil. One fore and the two hind wings have been moved up and down, respectively, for clarity. Scale bar: 1 mm.
FIG. 11 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 11. — Holotype of Xanthopimpla crescendae n. sp. (FUR-11214), photograph (A) with details and interpretative drawing (B), where dotted lines represent uncertain and/or interpolated interpretations. Scale bar: 1 mm.
FIG. 1 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 1. — Examples of colour preservation in pimpline Darwin wasps from the Fur Formation: A, paratype FUR-13817 of Crusopimpla violina n. sp.; B, paratype FUR-11216 of C. violina n. sp.; C, paratype FUR- 11219 of C. rettigi n. sp.; D, paratype FUR-13065 of Xanthopimpla crescendae n. sp.; E, paratype FUR-10918 of X. crescendae n. sp.; F, specimen FUR-12707 of Epitheronia stigmatica (Henriksen, 1922), n. comb. Scale bars: 1 mm.
FIG. 6 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 6. — Holotype of Crusopimpla violina n. sp. (FUR-13061), photograph (A) and interpretative drawing (B), where dotted lines represent uncertain and/or interpolated interpretations. Scale bar: 2 mm.
FIG. 5 in High diversity of pimpline parasitoid wasps (Hymenoptera, Ichneumonidae, Pimplinae) from the lowermost Eocene Fur Formation (Denmark)
FIG. 5. — Holotype of Crusopimpla rettigi n. sp. (FUR-11209), photograph (A) and interpretative drawing (B), where dotted lines represent uncertain and/or interpolated interpretations. Scale bar: 2 mm.
Figure 1 in Terrestrial Parasitengona mites (Trombidiformes) of Denmark - new data on parasite-host associations and new country records
Figure 1 Erythraeid larvae (Parasitengona: Erythraeidae) parasitizing various hosts: A – Charletonia cardinalis* on Stiroma affinis(Hemiptera: Delphacidae); B – [?] Leptus mariae* on Brachysomus echinatus(Coleoptera: Curculionidae). Not to scale. *Larvae depigmented due to preservation in EtOH.
Figure 2 in Terrestrial Parasitengona mites (Trombidiformes) of Denmark - new data on parasite-host associations and new country records
Figure 2 Trombidiid larvae (Parasitengona: Trombidiidae) parasitizing various hosts: A – Paratrombium egregrium* on Pachyneuron groenlandicum(Hymenoptera: Pteromalidae); B –Trombidium holosericeum on Pinalitus viscicola(Hemiptera: Miridae); C –T. holosericeum* on
Fig. 9 in Muscle attachment scars in helcionelloids from Denmark cast light on mollusc evolution in the Cambrian
Fig. 9. Muscle scars on internal mould of the rostroconch Ribeiria Sharpe, 1853, in lateral view. Both the anterior and posterior median muscle scars lie across the median dorsal plane of symmetry, the former attached to the transverse pegma preserved as a deep cleft on the internal mould. The posterior scar is a uniform attachment area, often ornamented with transverse growth lines, unlike the multiple small scars of Eotebenna (based on Pojeta and Runnegar 1976; Polechova 2015).
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.