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1,544 results for “spots”
FIGURE 5. Pseudocercospora norchiensis. a. Leaf spots. b–c. Fasciculate conidiophores. d–g in Multi-gene analysis of Pseudocercospora spp. from Iran
FIGURE 5. Pseudocercospora norchiensis. a. Leaf spots. b–c. Fasciculate conidiophores. d–g. Conidia. Scale bars = 10 µm.
Figure 3 in Mitochondrial genetic variation within and between Holbrookia lacerata lacerata and Holbrookia lacerata subcaudalis, the spot-tailed earless lizards of Texas
Figure 3. Hind limb blotches of (a) Holbrookia lacerata lacerata (UTA R 63333) and (b) H. l. subcaudalis (UTA R 63303). In H. l. lacerata, most blotches are oblong and fused into bands. In H. l. subcaudalis, blotches are ellipsoid.
Figure 2 in Mitochondrial genetic variation within and between Holbrookia lacerata lacerata and Holbrookia lacerata subcaudalis, the spot-tailed earless lizards of Texas
Figure 2. Bayesian phylogeny of whole mitochondrial genomes from Holbrookia lacerata lacerata and H. l. subcaudalis, with H. maculata and H. propinqua as outgroup taxa. Numerical values are Bayesian posterior probabilities; all other nodes represent values> 0.95. The scale bar represents percent genetic divergence.
Figure 1 in Mitochondrial genetic variation within and between Holbrookia lacerata lacerata and Holbrookia lacerata subcaudalis, the spot-tailed earless lizards of Texas
Figure 1. Sampling map of the focal taxa (Holbrookia lacerata lacerata and H. l. subcaudalis) and outgroup taxa (H. maculata and H. propinqua). The sampling ranges for the nominal taxa are representative of their current distributions. The historical distribution of H. lacerata is represented by the dotted line, while the Balcones Fault/Escarpment, the natural biogeographic barrier between the two subspecies, is represented by the solid black line.
Data From: Patterned Dried Blood Spot Cards for Improved Sampling of Whole Blood
<p>This is the data set from all figures and tables from the manuscript "Patterned Dried Blood Spot Cards for Improved Sampling of Whole Blood", which is posted to the ChemRxiv preprint server (<a href="https://doi.org/10.33774/chemrxiv-2021-b0rpt">10.33774/chemrxiv-2021-b0rpt</a>) and currently in consideration for peer-reviewed publication elsewhere. </p>
FIGURE 3 in Population Growth Parameters Of The Two-Spotted Spider Mite, Tetranychus Urticae, On Three Peach Varieties In Iran
FIGURE 3: Daily fecundity curves (eggs/female/day) of T. urticae on three peach varieties.
Figure 3 in Distribution modelling of the rare stink bug Ceratozygum horridum (Germar, 1839): isolated in small spots across the Neotropics or a continuous population?
Figure 3. Maps of occurrence probability of stink bug Ceratozygum horridum transferred to different biomes; 1: Continuous values of median occurrence probability resulting from an ensemble of all models performed with different numbers of background points; 2: mask showing areas with dissimilar environments recovered from multivariate environmental similarity surface (MESS). (a) Amazon; (b) Dry diagonal; (c) Atlantic Forest.
Figure 2 in Distribution modelling of the rare stink bug Ceratozygum horridum (Germar, 1839): isolated in small spots across the Neotropics or a continuous population?
Figure 2. (a) Occurrence data of Ceratozygum horridum; highlighted in light grey the convex hull polygon comprising the 10 records in Amazon forest used to train the models; in dark grey a 100 km buffer; (b) continuous values of median occurrence probability resulting from an ensemble with all cross-validations predictions of each model performed with different numbers of background points.
Figure 1 in Distribution modelling of the rare stink bug Ceratozygum horridum (Germar, 1839): isolated in small spots across the Neotropics or a continuous population?
Figure 1. (a) Distribution map of Ceratozygum horridum; B, C Habitus of C. horridum. (b) Dorsal; (c): Lateral. Scale bar: 0.5 mm.
Figure 3 in Natural history of the spot-tailed earless lizards (Holbrookia lacerata and H. subcaudalis)
Figure 3. Distribution of median movement and home range estimates for adult female and male Holbrookia lacerata (HOLA) and H. subcaudalis (HOSU) in Crockett County and Laughlin Air Force Base, respectively. Abbreviations follow Table 2.
Figure 2 in Natural history of the spot-tailed earless lizards (Holbrookia lacerata and H. subcaudalis)
Figure 2. Number of total and positive surveys for Holbrookia lacerata (left) and H. subcaudalis (right) in Texas by month.
Figure 4 in Natural history of the spot-tailed earless lizards (Holbrookia lacerata and H. subcaudalis)
Figure 4. Non-metric Multidimensional Scaling plot for (a) Holbrookia lacerata and (b) H. subcaudalis microhabitat comparisons. Open squares represent values of microhabitat variables measured at points used by lizards; closed circles represent available microhabitat measured along transects. Large circles represent 95% standard deviation ellipses with the dotted line encircling used points and the solid line encircling available points. Distance-to-road is abbreviated as DistRd.
Figure 1 in Natural history of the spot-tailed earless lizards (Holbrookia lacerata and H. subcaudalis)
Figure 1. Current and historic distribution of Holbrookia lacerata (A; top photo of male) and H. subcaudalis (B; bottom photo of male) in Texas. Black stars indicate the study areas for each species. Photo credits: T.J. Hibbitts.
FIGURE 3. a–g in Alternaria guilanica sp. nov., a new fungal pathogen causing leaf spot and blight on eggplant in Iran
FIGURE 3. a–g. Symptoms formed on eggplant leaves 7–10 days after inoculation in greenhouse conditions (a, b: strain IRAN 4220C; c–e: strain IRAN 4222C; f, g: strain IRAN 4221C) h. Control treatment.
FIGURE 1 in Alternaria guilanica sp. nov., a new fungal pathogen causing leaf spot and blight on eggplant in Iran
FIGURE 1. Phylogenetic tree generated from Bayesian Inference (BI) based on the combined dataset of ITS-rDNA, GAPDH, RPB2, TEF1-α and Alt a 1 for 44 Alternaria strains. The Bayesian posterior probabilities (>0.75) and RAxML Maximum likelihood and Maximum parsimony bootstrap values (>50%) are given at the nodes (PP/ML/MP). The tree was rooted to A. gypsophilae CBS 107.41 and A. vaccariae CBS 116533 (Alternaria sect. Gypsophilae) and the newly identified strains are in bold.
FIGURE 4. Magnolia mixteca. A. Flowering branch showing the basal yellowish petal spots. B in Corncob flower, Magnolia mixteca (M. sect. Macrophylla, Magnoliaceae) a new species endemic to the Alto Balsas Basin (Baja Mixteca), in the Pacific slopes of Oaxaca, Mexico
FIGURE 4. Magnolia mixteca. A. Flowering branch showing the basal yellowish petal spots. B. Androecium (basal) showing the stamens and gynoecium (apical) in female phase, before pollination, showing the styles. C. Gynoecium in male phase after pollination, without stamens, showing the staminal axis and ovary of basal carpels. (Photos Reyna Domínguez Yescas and Ciro Rodríguez Pérez.)
FIGURE 2. Phylogenetic tree constructed from a in Plenodomus dezfulensis sp. nov. causing leaf spot of Rapeseed in Iran
FIGURE 2. Phylogenetic tree constructed from a maximum likelihood analysis based on the combined ITS, tub2 and rpb2 sequences of Plenodomus strains. The tree was rooted to other related genera of Didymellaceae. Bootstrap values obtained in maximum likelihood (ML) and maximum parsimony (MP) analyses equal or greater than 50% and Bayesian posterior probability values (BYPP) equal or greater than 0.95 are shown at the nodes, respectively. T letters indicates the ex-type strains.
FIGURE 1 in Plenodomus dezfulensis sp. nov. causing leaf spot of Rapeseed in Iran
FIGURE 1. Leaf spot symptoms on Brassica napus subsp. napus caused by Plenodomus dezfulensis (IRAN 4159C). a–c. Natural symptoms of the diseases on specimens collected. d–e. Symptoms caused in pathogenicity test.
FIGURE 66 in Revision of species of the genus Tephritis Latreille 1804 (Diptera: Tephritidae) with entire apical spot
FIGURE 66. Tephritis volkovitshi, wing. Wing crossbands: SB—subbasal; O—oblique discomedial; PA—preapical; A—apical.
FIGURES 52–53. Tephritis sahandi. 52. Total view, paratype 3. 53 in Revision of species of the genus Tephritis Latreille 1804 (Diptera: Tephritidae) with entire apical spot
FIGURES 52–53. Tephritis sahandi. 52. Total view, paratype 3. 53. Wing. Wing crossbands: O—oblique discomedial; Ac—accessory spot; PA—preapical; A—apical.
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)
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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.