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232 results for “Micromorphology”
FIGURE 1. Opopanax hispidus. a in Comparative morphological, anatomical, micromorphological, and palynological studies on the genera Opopanax and Crenosciadium (Apiaceae)
FIGURE 1. Opopanax hispidus. a) general view of habitus; b) umbel.
FIGURE 6 in A revision of the Rhododendron taipaoense complex (subg. Tsutsusi sect. Tsutsusi, Ericaceae), based on observations of morphological characters and seed micromorphology
FIGURE 6. Distribution map of Rhodedendron taipaoense T.C. Wu & P.C. Tam.
FIGURE 2 in A new species of Myrcia (Myrtaceae) from the Federal District, Brazil, with micromorphological highlights
FIGURE 2. Myrcia federalis distribution map in the Federal District, Brazil.
FIGURE 2 in A new species of Myrceugenia (Myrteae, Myrtaceae) from Distrito Federal, Brazil, with notes on its micromorphology
FIGURE 2. Distribution of Myrceugenia bananalensis in Distrito Federal, Brazil.
Figure 8 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 8 Lower leaf epidermis of Cinnamomum under scanning electron microscope displaying stomatal features A, B circular stomata AC. chartophyllumBC. micranthumC, D lip-shaped stomatal CC. migaoDC. longepaniculatumE, F globose stomata EC. septentrionaleFC. camphoraG, H eyelid-shaped stomata GC. tonkinenseHC. jensenianum. Scale bars: 10 μm.
Figure 7 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 7 Lower leaf epidermis of Cinnamomum under light microscope (LM) AC. daphnoides displaying butterfly-shaped stomata BC. burmannii displaying butterfly-shaped stomata CC. migao displaying narrow lip-shaped stomata DC. longepaniculatum displaying bat-shaped stomata EC. randaiense displaying narrow lip-shaped stomata FC. verum displaying wide lip-shaped/wide lip-shaped stomata. Scale bars: 50 μm.
Figure 2 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 2 Leaf epidermal micromorphology of the Asian Cinnamomum, displaying the Type I upper leaf epidermis with polygonal cell shape, periclinal walls lacking reticulate ornamentations, and variable thickness of anticlinal walls AC. parthenoxylonBC. inunctumCC. bodinieri. Bars: 20 μm.
Figure 1 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 1 Morphology of the two sections of the Asian CinnamomumA–CCinnamomum camphora of sect. CamphoraA perulate terminal buds B branch portion displaying the alternate leaf arrangement C a leaf showing the pinnate venation and the domatia in axils of lateral veins D, ECinnamomum japonicum of sect. CinnamomumD terminal buds lacking helically arranged scales E branch portion exhibiting the subopposite leaf arrangement F a leaf displaying the tripliveined venation and the absence of domatia in axils of lateral veins.
Figure 4 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 4 Line-drawing displaying variation of the leaf upper epidermis a type I, displaying the non-reticulate periclinal wall, the polygonal cells, and the round to polygonal cell shape b type II, displaying the sinuous anticlinal wall, the irregular cell shape, and the reticulate periclinal wall c type II, displaying an extremely sinuous anticlinal wall, the irregular cell shape, and the reticulate periclinal wall d type II, displaying the straight or nearly so anticlinal wall, the polygonal cell shape, and the reticulate periclinal wall.
Figure 3 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 3 . Leaf epidermal micromorphology of Cinnamomum, displaying the Type II upper leaf epidermis with irregular or polygonal cell shape, reticulate periclinal walls, and straight, sinuous to extremely sinuous anticlinal walls AC. inersBC. appelianumCC. pittosporoides. Scale bars: 20 μm.
Supplementary material 1 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Phylogenetic trees of Cinnamomum and sequences obtained from the GenBank
Figure 6 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 6 Leaf epidermal micromorphology of Sassafras displaying the non-reticulate periclinal wall in the genus AS. albidumBS. randaienseCS. tzumu. Scale bars: 20 μm (A–C).
Figure 9 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 9 Phylogeny of the Asian Cinnamomum incorporating ML and BI trees. Upper number of the slash refers to the bootstrap value of the ML tree and the lower number of the slash refers to the posterior probabilities of the BI tree.
Figure 11 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 11 Ancestral character reconstruction of the epidermal cell shape and the straightness of anticlinal wall by applying a ML tree block in Mesquite with a maximum likelihood approach and MK1 model. Node A: the ancestral node of sect. Cinnamomum s.l. had sinuous anticlinal walls and irregular cell shapes or not, the probability being only 56.54%; Node B: the ancestral node of sect. Camphora s.s. possessed straight or curved anticlinal walls and polygonal cell shapes, the probability being 99.17%.
Figure 5 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 5 A comparison between the upper leaf epidermis under scanning electron microscope and light microscope, SEM images of internal surface of the upper leaf epidermis displaying the possible origin of the reticulations of the periclinal walls A, BC. aromaticumC, DC. daphnoidesE, FC. ilicioides. Scale bars: 10 μm; (A, C); 20 μm; (E); 50 μm (B, D, F).
Figure 10 from: Gang Z, Liu B, Rohwer JG, Ferguson DK, Yang Y (2021) Leaf epidermal micromorphology defining the clades in Cinnamomum (Lauraceae). PhytoKeys 182: 125-148. https://doi.org/10.3897/phytokeys.182.67289
Figure 10 Ancestral character reconstruction of the periclinal wall reticulation by applying a ML tree block in Mesquite with a maximum likelihood approach and MK1 model. The common ancestor of Node A possesses reticulate periclinal wall with high likelihood (95.18%), and the ancestral Node B is reticulate with high likelihood (99.99%).
Figure 4 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 4 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Orchis simia subsp. simia (A, B, C) and Neotinea tridentata subsp. tridentata (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 2 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 2 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Anacamptis morio subsp. morio (A, B, C) and Anacamptis papilionacea (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 3 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 3 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Orchis mascula subsp. mascula (A, B, C) and Orchis purpurea subsp. purpurea (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
Figure 1 from: Güler N (2016) Seed micromorphology of Orchis Tourn. ex L. (Orchidaceae) and allied genera growing in Edirne province, Turkey. PhytoKeys 68: 9-25. https://doi.org/10.3897/phytokeys.68.8746
Figure 1 - Light microscope (A, D) and scanning electron microscope (B, C, E, F) photographs of Anacamptis coriophora (A, B, C) and Anacamptis laxiflora subsp. laxiflora (D, E, F) seeds. Scale bars: 0.1 mm (A, B, D, E) and 0.01 mm (C, F).
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.