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398 results for “morphotype”
Figure 10 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 10 - Massarina pandanicola (MFLU 18-0004, holotype). a Colony on MEA media b Mycelium masses c–g Conidia and conidiogenous cells h Conidia . Scale bars: 20 μm (b), 2 μm (c–g), 5 μm (h).
Figure 12 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 12 - Phylogram generated from maximum likelihood analysis based on ITS, TEF1 and β-tubulin sequenced data. Maximum likelihood (left) and Bayesian inference (right) bootstrap values are given above/below the nodes. The newly generated sequences are in red bold. The tree is rooted with Diaporthe ambigua .
Figure 15 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 15 - Colletotrichum pandanicola (MFLU 18-0003, holotype). a Colony on PDA media b Conidia and conidiogenous cells c–g Conidia on PDA culture. Scale bars: 5 μm (b), 2 μm (c–g).
Figure 7 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 7 - Phylogram generated from maximum likelihood analysis based on ITS, TEF1 and Actin sequenced data. Maximum likelihood bootstrap is given above/below the nodes. The newly generated sequences in red bold. The tree is rooted with Cercospora beticola .
Figure 2 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 2 - All cultures from this study are grown on PDA at room temperature after 7 days (original codes are written at the bottom of each picture).
Figure 6 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 6 - Endomelanconiopsis freycinetiae (MFLU 18-0002, holotype). a–d Mycelia masses. Scale bars: 20 μm (a–c), 10 μm (d).
Figure 8 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 8 - Cladosporium endophyticum (MFLU 18-0005, holotype). a Colony on MEA media b Mycelium masses c–e Conidia and conidiogenous cells f, g Conidia h Conidia and conidiogenous cells. Scale bars: 5 µm (b–h), 10 µm (h).
Figure 5 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 5 - Phylogram generated from maximum likelihood analysis based on ITS, LSU and TEF1 sequenced data. Maximum likelihood bootstrap values are given above/below the nodes. The newly generated sequences are in red bold. The tree is rooted with Tiarosporella paludosa .
Figure 18 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 18 - Phylogram generated from maximum likelihood analysis based on the combination of ITS, β-tubulin and TEF1 sequenced data. Maximum parsimony bootstrap is given above/below the nodes. The newly generated sequences are in red bold. The tree is rooted with Seiridium camelliae .
Figure 17 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 17 - Mycoleptodiscus endophyticus (MFLU 18-0001, holotype). a Colony on MEA media b, c Mycelia masses d–f Vegetative hyphae in culture. Scale bars: 10 μm (b–d), 5 μm (e, f).
Figure 4 from: Tibpromma S, Hyde K, Bhat J, Mortimer P, Xu J, Promputtha I, Doilom M, Yang J, Tang A, Karunarathna S (2018) Identification of endophytic fungi from leaves of Pandanaceae based on their morphotypes and DNA sequence data from southern Thailand. MycoKeys 33: 25-67. https://doi.org/10.3897/mycokeys.33.23670
Figure 4 - Endopandanicola thailandica (MFLU 18-0021, holotype). a Mycelia masses b, c Clamp connections. Scale bars: 10 μm (a), 5 μm (b, c).
Figs 7–12 in Insect galls on Bauhinia cupulata (Fabaceae): morphotypes characterization and description of a new species of Schizomyia (Cecidomyiidae, Diptera)
Figs 7–12. General view of galls in Bauhinia cupulata (Fabaceae). (7) Fusiform stem gall, inducer not determined; (8–10) Globoid stem gall induced by Asphondylia sp.; (11–12) Globoid leaf galls induced by Alycaulini on the adaxial and abaxial surfaces, respectively.
Figs. 21–24 in Insect galls on Bauhinia cupulata (Fabaceae): morphotypes characterization and description of a new species of Schizomyia (Cecidomyiidae, Diptera)
Figs. 21–24. Schizomyia barreirensis, sp. n., immature stages. (21–22) Pupa. (21) Head pupal (frontal view). (22) Abdominal segment 6 (dorsal view); (23–24) Larva. (23) Prothoracic spatula, sternal and lateral papillae (ventral view). (24) Terminal segment with terminal papillae (dorsal view). Scale bars in mm.
Text-fig. 6. Short colony-chain of Aulacoseira cf. crenulata (EHRENBERG) THWAITES 1848, cracked valve (inner side) of Tetracyclus ellipticus (EHRENBERG) GRUNOW 1862 and several morphotypes of Aulacoseira distans (EHRENBERG) SIMONSEN 1979, SEM-photograph, sample Sf YYY, seam 5 roof. in Siliceous Microfossils From The Oligocene Tripoli-Deposit Of Seifhennersdorf
Text-fig. 6. Short colony-chain of Aulacoseira cf. crenulata (EHRENBERG) THWAITES 1848, cracked valve (inner side) of Tetracyclus ellipticus (EHRENBERG) GRUNOW 1862 and several morphotypes of Aulacoseira distans (EHRENBERG) SIMONSEN 1979, SEM-photograph, sample Sf YYY, seam 5 roof.
FIGURE 4 in New Chrysophycean cyst morphotypes and their ecology in Finland
FIGURE 4. Stomatocysts ornamented with spines: a–d) SK10, e–f) SK11. Scale bar = 3 µm.
FIGURE 1 in New Chrysophycean cyst morphotypes and their ecology in Finland
FIGURE 1. Location of study lakes and Finland's location in Northern Europe.
Colorectal cancer morphotypes
<p>A collection of four whole slide images downsampled to 5x magnification. The images support the discussion on morphological patterns of colorectal cancer in Dragomir et al., "A quantitative tumor–wide analysis of morphological heterogeneity of colorectal adenocarcinoma", DOI: <span>10.1101/2024.04.10.588907 </span></p>
Figure 2 from: Canal NA, Hernández-Ortiz V, Tigrero Salas JO, Selivon D (2015) Morphometric study of third-instar larvae from five morphotypes of the Anastrepha fraterculus cryptic species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 41-59. https://doi.org/10.3897/zookeys.540.6012
Figure 2 - Linear variables measured in the third-instar larvae of the Anastrepha fraterculus complex. A cephalopharyngeal skeleton B mouth hook C hypopharyngeal sclerite D anterior spiracle. Variables are defined in the text.
Figure 4 from: Canal NA, Hernández-Ortiz V, Tigrero Salas JO, Selivon D (2015) Morphometric study of third-instar larvae from five morphotypes of the Anastrepha fraterculus cryptic species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 41-59. https://doi.org/10.3897/zookeys.540.6012
Figure 4 - Allometric study indicating the influence of the mouth hook size in grouping five morphotypes of the Anastrepha fraterculus complex, studied with an elliptical Fourier analysis.
Figure 6 from: Canal NA, Hernández-Ortiz V, Tigrero Salas JO, Selivon D (2015) Morphometric study of third-instar larvae from five morphotypes of the Anastrepha fraterculus cryptic species complex (Diptera, Tephritidae). In: De Meyer M, Clarke AR, Vera MT, Hendrichs J (Eds) Resolution of Cryptic Species Complexes of Tephritid Pests to Enhance SIT Application and Facilitate International Trade. ZooKeys 540: 41-59. https://doi.org/10.3897/zookeys.540.6012
Figure 6 - 3D scatterplot of discriminant function analysis applied to the centroid values of 24 measurements in third-instar larvae of five morphotypes of the Anastrepha fraterculus complex.
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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.