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455 results for “mushroom”
FIGURE 2 in The case of the missing mushroom: a novel bioluminescent species discovered within Favolaschia in southwestern China
FIGURE 2. Maximum Likelihood tree generated using RAxML based on combined ITS and LSU sequence data. MLBS Bootstrap support values for maximum likelihood (≥60%) and posterior probability values (PP) for BI (≥0.90 PP) are given above each branch. The new species is shown in bold blue. The tree is rooted to Mycena abramsii (HMJAU43606, HMJAU43523).
FIGURE 1 in The case of the missing mushroom: a novel bioluminescent species discovered within Favolaschia in southwestern China
FIGURE 1. Fruit bodies of Favolaschia xtbgensis in the field, at night. A. Photographed with the aid of a flashlight. B. Photographed in complete darkness. Scale bars: A, B=10 mm.
X-ray micro-computed tomography of mushrooms during the instant controlled pressure drop (DIC) combined hot air drying
<p>These videos present the microstructure evolution of the <em>shiitake </em>mushrooms during the instant controlled pressure drop (DIC) combined hot air drying as well as the comparison of the microstructure of dried mushrooms treated by different drying methods.</p> <p>Fresh-skin and fresh-lamella indicate fresh mushroom cubes including skin and lamella parts respectively.</p> <p>DIC-skin and DIC-lamella indicate DIC treated mushroom cubes including skin and lamella parts respectively.</p> <p>DIC-HA35 dried-skin, DIC-HA65 dried-skin, and HA35 dried-skin indicate mushroom cubes including skin parts that were dried by DIC combined hot air drying at 35 ℃, DIC combined hot air drying at 65 ℃ and hot air drying at 35 ℃, respectively.</p>
Data for: European mushroom assemblages are phylogenetically structured by temperature
<p><span>Recent global warming affects species compositions at an unprecedented rate. To predict climate-induced changes in species assemblages, a better understanding of the link between species occurrence and climate is needed. Macrofungal fruit body assemblages are correlated with the thermal environment at the European scale. However, it is still unknown whether macrofungal communities are also phylogenetically structured by thermal environments. Thermal environments are characterized by annual temperature means but also by intra-annual temperature variability (hereafter termed temperature seasonality), which are both considered in this study. Here, we used distribution data of </span><span>2,882 </span><span>species based on fruit body records across Europe to address two main questions: (i) Are mushroom assemblages at the extremes of the mean (warm and cold) and seasonal (high intra-annual variability, i.e. continental) climate gradient phylogenetically more similar than expected (phylogenetic alpha diversity); (ii) are mushroom assemblages, that are subject to different mean and seasonal temperature conditions, composed of different lineages (phylogenetic beta diversity). Our phylogenetic alpha diversity analysis shows that mushroom assemblages are phylogenetically structured by warm and cold environments, indicating that phylogenetically related species with similar traits thrive under more extreme conditions. In contrast, assemblages are phylogenetically more dissimilar (overdispersed) in temperature seasonal environments, indicating limiting similarity. Phylogenetic beta diversity was significantly correlated with mean and seasonal temperature differences, a response mainly driven by a few genera. Our results show that macrofungal assemblages are phylogenetically structured by temperature across Europe, suggesting phylogenetically constrained specialization towards temperature extremes. Predicted anthropogenic warming is likely to affect species composition and phylogenetic diversity with additional consequences for the carbon- and nutrient cycles.</span></p>
Blue Mushroom, Moving LED art
This mechanica art changes colors while the mushroom opens and closes. Created in RealityCapture by Capturing Reality from 22 images in 00h:06m:08s. Source: Objaverse 1.0 / Sketchfab
Implementation of K-Nearest Neighbor Algorithm and Gray Level Co-Occurance Matrix Method in Mushroom Type Classification
<p>This material has presented on 2nd International Conference on Advanced Research in Engineering and Technology in October 25, 2023.</p>
FIGURE 3 in A large marine Caribbean mushroom field: description of Eudistoma amanitum sp. nov. (Ascidiacea: Polycitoridae)
FIGURE 3. Eudistoma amanitum sp. nov.: A. Thorax with incubating embryo; B. larvae. Scale bar 1.1 mm.
FIGURE 4 in A large marine Caribbean mushroom field: description of Eudistoma amanitum sp. nov. (Ascidiacea: Polycitoridae)
FIGURE 4. Maximum likelihood phylogenetic hypothesis based on partial mitochondrial COI sequences, including the new species Eudistoma amanitum and other species with similar colony morphology as terminals. The first branch support value is the bootstrap for Maximum likelihood (when> 70%) and the second value is the posterior Bayesian probability (when> 0.9).
FIGURE 1 in A large marine Caribbean mushroom field: description of Eudistoma amanitum sp. nov. (Ascidiacea: Polycitoridae)
FIGURE 1. Eudistoma amanitum sp. nov.: A–D Colonies in their natural habitats; E. Section through the colony showing sand and feces in the tunic matrix; F. Preserved colony showing detail of its architecture. Scale bars 5 cm.
FIGURE 2 in A large marine Caribbean mushroom field: description of Eudistoma amanitum sp. nov. (Ascidiacea: Polycitoridae)
FIGURE 2. Eudistoma amanitum sp. nov.: A. Thorax showing the first row of stigmata bending anteriorly; B. Thorax showing the siphons lobes and the musculature; C. Oral tentacles indicated by arrows.; D. Abdomen showing the pyloric tubules (arrows); E. Abdomen with male follicles; F. Abdomen showing the stomach, duodenum and the post-stomach. Scale bars 3 mm (A), 3.6 mm (B) e 1.7 mm (C).
Supplementary material 3 from: Mandić R, Adžemović M, Marjanović Ž (2018) Conservation and trade of wild edible mushrooms of Serbia – history, state of art and perspectives. Nature Conservation 25: 31-53. https://doi.org/10.3897/natureconservation.25.21919
Annual amounts of mushrooms allowed to harvest (in kg, according to INCS) : Explanation note: The document provides table with official data on mushroom and truffle amounts that have been allowed to harvest since 1993, according to INCS.
Supplementary material 1 from: Mandić R, Adžemović M, Marjanović Ž (2018) Conservation and trade of wild edible mushrooms of Serbia – history, state of art and perspectives. Nature Conservation 25: 31-53. https://doi.org/10.3897/natureconservation.25.21919
Overview of mycological literature, research and herbaria collections on macro fungi of Serbia with reference list : Explanation note: The document provides brief descriptions of the scientific and hobbyist published data on epigeic and hypogeic macro fungi in Serbia, including the history of their recognition with reference lists. It also provides information on official herbaria collections of macro fungi.
Supplementary material 2 from: Mandić R, Adžemović M, Marjanović Ž (2018) Conservation and trade of wild edible mushrooms of Serbia – history, state of art and perspectives. Nature Conservation 25: 31-53. https://doi.org/10.3897/natureconservation.25.21919
The lists of strictly protected and protected species of macro fungi in Serbia : Explanation note: The document lists the legal acts that regulate macro fungi and their habitats in Serbia, as well as species that are regulated by The Regulation and The Bylaw.
FIGURE 18. Hyperlasion aliens Mohrig, 2004 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 18. Hyperlasion aliens Mohrig, 2004 (specimen from Papua New Guinea). A. Hypopygium. B. Flagellomere 3–5. C. Male.
FIGURE 17 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 17. Scatopsciara atomaria (Zetterstedt, 1851). A. Hypopygium. B. Flagellomeres 4–6. C. Palpus. D. Fore tibia.
FIGURE 16 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 16. Bradysia strenua (winnertz, 1867). A. Left side of the hypopygium in ventral view. B. Gonostylus. C. 4th flagellomere. D. Scutellum.
FIGURE 15 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 15. Corynoptera concinna (winnertz, 1867). A. Hypopygium. B. Basal segments of antenna. C. Fore tibia.
FIGURE 14 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 14. Bradysia spatitergum (Hardy, 1956). A. Hypopygium, ventral side. B. Hypopygium, dorsal side. C. Flagellomeres 3–5.
FIGURE 13 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 13. Bradysia pallipes (Fabricius, 1787); (specimen from Australia). A. Hypopygium (left half in ventral view).
FIGURE 11 in Black fungus gnats (Diptera: Sciaridae) found in association with cultivated plants and mushrooms in Australia, with notes on cosmopolitan pest species and biosecurity interceptions
FIGURE 11. Pnyxia scabiei (Hopkins, 1895). A. Hypopygium. B. Head with basal segments of antenna (male). C. Fore tibia.
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.