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741 results for “Decay”
Figure 14 in Nereidid polychaetes (Annelida) inhabiting the inside of decaying fronds of the mangrove palm Nypa fruticans in a tropical estuary in Malaysia, with special reference to the life history of the dominant species, Namalycastis sp.
Figure 14. Perinereis aibuhitensis (UMT-Ann 2191). (a) Anterior end with everted proboscis, dorsal view. (b) Middle body, dorsal view. (c) Posterior end, dorsal view. (d–f) Posterior views of parapodia in chaetigers 25 (d), 65 (e), and 104 (f). (g) Homogomph spiniger in notochaetae, chaetiger 25. (h) Homogomph spiniger in upper neurochaetae, chaetiger 65. (i) Heterogomph spiniger in lower neurochaetae, chaetiger 65. (j) Heterogomph falciger in upper neurochaetae, chaetiger 25. (k) Heterogomph falciger in lower neurochaetae, chaetiger 65. Scale bars: a–c = 1 mm; d–f = 0.2 mm; g–i = 0.1 mm; j, k = 0.05 mm.
Figure 12 in Nereidid polychaetes (Annelida) inhabiting the inside of decaying fronds of the mangrove palm Nypa fruticans in a tropical estuary in Malaysia, with special reference to the life history of the dominant species, Namalycastis sp.
Figure 12. Namalycastis rhodochorde, UMT-Ann 2270. Chaetae in chaetiger 51. (a) Sesquigomph spiniger in upper neurochaetae. (b) Heterogomph falciger in upper neurochaetae. (c) Heterogomph falciger in lower neurochaetae. Scale bars: 0.1 mm.
Figure 11 in Nereidid polychaetes (Annelida) inhabiting the inside of decaying fronds of the mangrove palm Nypa fruticans in a tropical estuary in Malaysia, with special reference to the life history of the dominant species, Namalycastis sp.
Figure 11. Namalycastis rhodochorde, UMT-Ann 2270. Parapodium of chaetiger 101, posterior view. Scale bar: 0.2 mm.
Sonic tomography reveals the relationship between the internal wood decay and beetle communities
<p>The dataset includes two files:</p> <p>1) List of beetle species captured in live and dead trees, including trophic guilds of each species.</p> <p>2) Supporting data, including:</p> <p> -Table S1 (Summary of abundance and richness of beetle species captured in dead and live trees. Species are categorized into trophic guilds)</p> <p> -Table S2<strong>. </strong>Averaged coefficients of the best-supported GLMM</p> <p> -Fig. S1. Coefficients of quantile regressions</p>
FIGURE. Basidiocarps of species of Agaricales in Panama. a. Asterophora parasitica (PAN180) on decayed basidiocarp of Russula sp. b–c. Campanophyllum probiscideum. b. On bark of a standing tree (KaiR434). c. From above and below (KaiR434). d–e. Rhodocollybia tablensis. d. (KaiR484). e. (PAN238). f. Cantharocybe brunneovelutina (PAN260). g. Pluteus hongoi (PAN413). h. Tetrapyrgos atrocyanea (KaiR395). Bars a = 1 cm, b, c, f, g = 2 cm, d, e = 5 cm, h = 0.5 cm. a, f, g Photos by H. Lotz-Winter. b, c, d, h Photos by K. Reschke. e Photo by O. Koukol. in New and interesting species of Agaricomycetes from Panama
FIGURE. Basidiocarps of species of Agaricales in Panama. a. Asterophora parasitica (PAN180) on decayed basidiocarp of Russula sp. b–c. Campanophyllum probiscideum. b. On bark of a standing tree (KaiR434). c. From above and below (KaiR434). d–e. Rhodocollybia tablensis. d. (KaiR484). e. (PAN238). f. Cantharocybe brunneovelutina (PAN260). g. Pluteus hongoi (PAN413). h. Tetrapyrgos atrocyanea (KaiR395). Bars a = 1 cm, b, c, f, g = 2 cm, d, e = 5 cm, h = 0.5 cm. a, f, g Photos by H. Lotz-Winter. b, c, d, h Photos by K. Reschke. e Photo by O. Koukol.
Tropical and Subtropical Pacific Sources of the Asymmetric El Niño La Niña Decay and their Future Changes
<p>The model data output supporting the figures shown in the manuscript.</p> <p>For further details, please see</p> <p>Jiepeng Chen, Jin-Yi Yu, Sheng Chen, Xin Wang, Ziniu Xiao, Shih-Wei Fang (2022). Tropical and Subtropical Pacific Sources of the Asymmetric El Niño La Niña Decay and their Future Changes. Accepted at Geophysical Research Letters.</p>
Non-Invasive Rheo-MRI Study of Egg Yolk-Stabilized Emulsions: Yield Stress Decay and Protein Release
<p>Raw data for our publication "Non-Invasive Rheo-MRI Study of Egg Yolk-Stabilized Emulsions: Yield Stress Decay and Protein Release", including MRI (Paravision) and D-T2 maps (Topspin) datasets, rheological measurements (ASCII) and MATLAB scripts organised corresponding to each figure in the paper.</p>
FIGURE 5 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 5. Cladosporium brigadeirensis (VIC 44238, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores. E. Mult-branched conidiophore. I. Conidiogenous cell details. J. Terminal and intercalary conidiogenous cells. K. Secondary ramoconidia prolongation. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 7 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 7. Cladosporium pseudotenuissimum (VIC 44422, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Macronematous conidiophores and conidia. E, F. Micronematous conidiophores at arrows. K. Conidiogenous cel with conidia. L. Bubble-like swelling details. M. Microcyclic conidiogenesis (black arrow) and Ramoconidia (red arrow). Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE 6 in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE 6. Cladosporium chusqueae (VIC 44239, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–K. Macronematous conidiophores and conidia. G. Terminal conidiophore. H. Short peg-like prolongation. I. Bent conidiophore; J–K. Conidiophore branched near the base at a 90º angle. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium benschii (VIC 44412, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–J. Non-geniculate macronematous conidiophores and conidia. K. Conidiogenous cells with slightly protuberant loci. L. Micronematous conidiophores. M. Microcyclic conidiogenesis. Scale bars: E–M = 20 µM.
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium bambusicola (VIC 44237, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–F. Conidiophore and bigger conidia. G–H. Conidiophores and smaller conidia. I. Stromatic hyphal aggregation. J–K. Micronematous conidiophores. L. Ramoconidia and conidia. M. Microcyclic conidiogenesis. Scale bars: E = 50 µM; F–M = 20 µM.
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, ex-neotype, or reference strain).
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain). in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. (Continued) Multilocus phylogenetic tree inferred from Bayesian analysis based on the combined TEF1-α and ACT sequences. Bayesian posterior probabilities are indicated next to the nodes. The tree was rooted with Cladosporium herbarum CBS 121621. The species in this study are indicated in bold. Types of species are indicated after the culture collection number (T = ex-type, ex-epitype, exneotype, or reference strain).
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM. in Six new species of Cladosporium associated with decayed leaves of native bamboo (Bambusoideae) in a fragment of Brazilian Atlantic Forest
FIGURE. Cladosporium aulonemiae (VIC 44413, holotype). A–D. Colonies on A. Potato dextrose agar; B. Malt extract agar; C. Oatmeal agar; D. Synthetic nutrient-poor agar, after 14 days at 25 ºC, under near-ultraviolet light, respectively. E–G. Macronematous conidiophores and numerous conidia; H–I. Formation of loci in close succession; I. Spread polysaccharide-like material; J. Micronematous conidiophores; K. Ramoconidia and conidia; L. Microcyclic conidiogenesis; M. Stromatic hyphal aggregation. Scale bars: E–M = 20 µM.
Decaying Wooden Washington Statue
This decaying statue is slowly succumbing to the elements and animal activity. It was captured with an iPad Pro 2 and the Scaniverse app. Source: Objaverse 1.0 / Sketchfab
data and codes for paper "Understanding power-law photoluminescence decays and bimolecular recombination in lead-halide perovskites"
<p>These are the data and Matlab codes used in the paper "Understanding power-law photoluminescence decays and bimolecular recombination in lead-halide perovskites".</p>
Date in "Variations in the microstructure of saline ice during its growth and decay: Evidences from an experimental study"
<p>These files contain the original data and results of the paper "Variations in the microstructure of saline ice during its growth and decay: Evidences from an experimental study"</p>
Supplemental data: possible Sn126 decay gamma-ray fluxes from known SNRs and magnetars
<p>The tar file contains two separate data files.</p> <p>The file SNR_flux.txt contains the list of supernova remnants and their gamma-ray line fluxes from the decay of nucleus 126Sn at 666.3 keV (100% intensity). Fluxes are calculated by assuming a ejecta mass of 0.01 solar mass, containing number fraction of 126Sn of 1.7*10^-4. Note that this list only contains those SNRs with both the age and distance information available from http://www.physics.umanitoba.ca/snr/SNRcat/.</p> <p>The file magnetar_flux.txt contains instead the gamma-ray line fluxes from known magnetars with both the characteristic age and distance information available from http://www.physics.mcgill.ca/~pulsar/magnetar/main.html.</p>
FIGURE 2 in Description of Metarhabditis giennensis sp. n. (Nematoda, Rhabditida, Rhabditidae) from decaying wood of a riverbank forest in the southern Iberian Peninsula
FIGURE 2. Metarhabditis giennensis sp. n. (LM). A: Neck region (arrow indicates hemizonid). B: Female lip region. C: Female stoma in dorso-ventral view (white arrows pointing at the gymnostomatal denticles, black arrows indicate metastegostomatal denticles). D: Male stoma (arrows indicate metastegostomatal denticles). E: Gymnostomatal denticles (arrows). F: Excretory pore. G: Uterine eggs. H: Female posterior end. I, J: Male posterior end (figures indicating the genital papillae, ph = phasmid).
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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.
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.