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Figure 12 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 12 - Cycloseris boschmai sp. n. a Indonesia, Bali, Tulamben, September 1997 b Philippines, Cebu, November 1999 c–e Indonesia, Central Sulawesi, Togian Islands, September 1999 f Indonesia, South Sulawesi, Spermonde Archipelago, Bone Lola reef, August 1997.
Figure 4 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 4 - Specimen of Cycloseris boschmai sp. n. (RMNH Coel. 21471). Indonesia, NE Komodo, S Gili Lawa Laut, Snellius-II Exp. Sta. 4.253, 27 October 1984. a Upper side b Lower side. Scale bar: 0.5 cm.
Figure 10 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 10 - Two specimens of Cycloseris boschmai sp. n. (RMNH Coel. 8286) with marginal buds and sand in the mouths. Indonesia, Banda, off Lontor, Danish Exp. to the Kei Islands, 15 June 1922.
Figure 11 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 11 - Juvenile, attached specimens of Cycloseris boschmai sp. n. a Papua New Guinea, Bismarck Sea, Madang, June 1992 b–d Malaysia, South China Sea, Layang Layang, Easternmost point, (RMNH Coel. 40095), 28 March 2013 b In situ (bleached) c Lower side d Upper side. Scale bars: 0.5 cm.
Figure 1 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 1 - Lectotype of Fungia marginata Boschma, 1923 (ZMA Coel. 604, ethanol), which is a specimen of Cycloseris costulata Ortmann, 1889, collected at Siboga Expedition Sta. 315, Anchorage East of Sailus Besar, in the Paternoster islands, Indonesia. a Upper side b Lower side c Collection labels indicating the first identification by Van der Horst (Fungia patella) and the later one by Boschma (Fungia marginata). Scale bar: 0.5 cm.
Figure 7 from: Hoeksema B (2014) The "Fungia patella group" (Scleractinia, Fungiidae) revisited with a description of the mini mushroom coral Cycloseris boschmai sp. n. ZooKeys 371: 57-84. https://doi.org/10.3897/zookeys.371.6677
Figure 7 - Specimen of Cycloseris boschmai sp. n. (RMNH Coel. 24291). Indonesia, Central Sulawesi, Togian Islands, S Togian I., Tethyana Exp. Sta. 14, 23/24 September 1999 a Upper side b Lower side. Scale bar: 0.5 cm.
Fig. 3 in Morphology, distribution and abundance of antennal sensilla of the oyster mushroom fly, Coboldia fuscipes (Meigen) (Diptera: Scatopsidae)
Fig. 3. SEM micrographs showing sensilla subtypes of the flagellum of C. fuscipes. (a) Sensilla subtypes of the flagellomere of C. fuscipes; (b) magnification of Trichoid sensilla, Mt2 and Mt3. Mt, microtrichiae; Ba, Basiconica sensilla; Ch, Chaetie sensilla; Tr, Trichoid sensilla; Co, Coeloconic sensilla. Scale bar = 10 µm in (a) and 2 µm in (b).
Fig. 5 in Structures of ganorbifates C-I, seven previously undescribed lanostanoids from the mushroom Ganoderma orbiforme, and insights of computed biosynthesis with DFT
Fig. 5. NOE correlations of compounds 2–7.
Fig. 1. Hypothetical biosynthetic pathway for 1–7 in Structures of ganorbifates C-I, seven previously undescribed lanostanoids from the mushroom Ganoderma orbiforme, and insights of computed biosynthesis with DFT
Fig. 1. Hypothetical biosynthetic pathway for 1–7.
Fig. 3. 1H–1H in Structures of ganorbifates C-I, seven previously undescribed lanostanoids from the mushroom Ganoderma orbiforme, and insights of computed biosynthesis with DFT
Fig. 3. 1H–1H COSY and HMBC correlations of compounds 1–7.
Fig. 2 in Structures of ganorbifates C-I, seven previously undescribed lanostanoids from the mushroom Ganoderma orbiforme, and insights of computed biosynthesis with DFT
Fig. 2. Structures of Structures of ganorbifates C–I (1–7).
Fig. 5 in Sesquiterpenoids and their quaternary ammonium hybrids from the mycelium of mushroom Stereum hirsutum by medium optimization
Fig. 5. Experimental CD spectra of 3–5 and TDDFT-calculated CD spectra of 5.
Fig. 4 in Sesquiterpenoids and their quaternary ammonium hybrids from the mycelium of mushroom Stereum hirsutum by medium optimization
Fig. 4. Key ROESY correlations of 2–5.
Fig. 1 in Sesquiterpenoids and their quaternary ammonium hybrids from the mycelium of mushroom Stereum hirsutum by medium optimization
Fig. 1. The LC-MS profiles of extracts for S. hirsutum FP-91666 cultures on five media.
Fig. 2. The structures from S in Sesquiterpenoids and their quaternary ammonium hybrids from the mycelium of mushroom Stereum hirsutum by medium optimization
Fig. 2. The structures from S. hirsutum FP-91666 cultured on WGB medium.
Fig. 4 in Anti-neuroinflammatory polyoxygenated lanostanoids from Chaga mushroom Inonotus obliquus
Fig. 4. Preliminary SAR studies.
Fig. 2. 1H–1H in Anti-neuroinflammatory polyoxygenated lanostanoids from Chaga mushroom Inonotus obliquus
Fig. 2. 1H–1H COSY and key HMBC correlations of inonotusol H–N (1–7).
Fig. 3 in Anti-neuroinflammatory polyoxygenated lanostanoids from Chaga mushroom Inonotus obliquus
Fig. 3. ROESY correlations of inonotusol H–N (1–7).
Fig. 3. ORTEP drawing for 3 in Chemical constituents and their biological activities from the mushroom Pyropolyporus fomentarius
Fig. 3. ORTEP drawing for 3 showing the absolute configuration.
Fig. 4. ORTEP drawing for 4 in Chemical constituents and their biological activities from the mushroom Pyropolyporus fomentarius
Fig. 4. ORTEP drawing for 4 showing the absolute configuration.
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.