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2,256 results for “Southern China”
FIGURE 1. Polystichum arcuatum.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 1. Polystichum arcuatum.—A. Inside view of the sinkole where the new species was discovered.—B. Habitat and plant.—C. Portion of abaxial lamina.—D. Habit.—E. Lower portion of plant.—F. Portion of abaxial lamina bearing sori.—G. Portion of pinna showing sori.—H. Equatorial view of spore under SEM.—I. Polar view of spore under SEM.
FIGURE 9. Polystichum paraobliquum.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 9. Polystichum paraobliquum.—A. Inside view of the cave where the new species was discovered.—B. Habitat and plant.—C, D. Portions of abaxial laminae.—E. Lower portion of plant.—F. Portion of abaxial lamina showing sori.—G. Portions of stipes showing scales.—H. Equatorial view of spore under SEM.—I. Polar view of spore under SEM.
FIGURE 5. Polystichum membranifolium.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 5. Polystichum membranifolium.—A. Inside view of the cave where the new species was discovered.—B–D. Habitats and plants.—E, F. Portions of abaxial lamina.—G. Stipes.—H. Equatorial view of spore under SEM.
FIGURE 2 in Aporpium miniporum, a new polyporoid species with vertically septate basidia from southern China
FIGURE 2. Microscopic structures of Aporpium miniporum (drawn from holotype). a: Basidiospores. b: Basidia and basidioles. c: Hyphae from trama. d: Hyphae from subiculum.
FIGURE 1 in Aporpium miniporum, a new polyporoid species with vertically septate basidia from southern China
FIGURE 1. Phylogenetic position of Aporpium miniporum inferred from ITS dataset. The topology is from maximum likelihood analysis, and the statistical values from maximum likelihood and Bayesian inferences are labeled at the nodes when simultaneously above 50% and 0.8.
FIGURE 2 in Diaporthe species occurring on Senna bicapsularis in southern China, with descriptions of two new species
FIGURE 2. Morphology of Diaporthe sennae from Senna bicapsularis (BJFC-S1370). A, B: Habit of conidiomata on twig. C: Transverse sections through conidiomata. D: Longitudinal sections through conidiomata. E: Alpha and beta Conidia. F: Beta conidia. G: Colonies on PDA at 3 days (left) and 30 days (right). Scale bars: C–D = 200 μm; E–G = 5 μm.
FIGURE 1 in Diaporthe species occurring on Senna bicapsularis in southern China, with descriptions of two new species
FIGURE 1. Phylogram of Diaporthe based on combined ITS, CAL, HIS, TEF1-α and TUB. MP and ML bootstrap support values above 50 % are shown at the first and second position. Thickened branches represent posterior probabilities above 0.90 from BI. Scale bar = 90 nucleotide substitutions. Ex-type strains are in bold. Strains in current study are in blue.
FIGURE 3 in Diaporthe species occurring on Senna bicapsularis in southern China, with descriptions of two new species
FIGURE 3. Morphology of Diaporthe sennicola from Senna bicapsularis (BJFC-S1368). A: Habit of conidiomata on twig. B: Transverse sections through conidiomata. C: Longitudinal sections through conidiomata. D: Colonies on PDA at 3 days (left) and 30 days (right). E: Alpha conidia. F: Conidiophores. Scale bars: B–C = 200 μm; E–F = 5 μm.
FIGURE 7. Gelidocalamus stellatus var. wugongshanensis. A in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 7. Gelidocalamus stellatus var. wugongshanensis. A. habit; B. new shoot; C–F. culm leaf sheath; G. hollow internode, longitudinal section; H. node and buds; I. foliage leaf, the abaxially basal; J. foliage leaf sheath. (Scale bars = 0.5 m [A]; 1 cm [B–F]; 0.5 cm [G–J])
FIGURE 2 in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 2. Specimens of the taxa of Gelidocalamus analyzed in this study. A. Gelidocalamus monophyllus (Zhang & Liu 20161024001); B. G. stellatus var. stellatus (Yang & Zhang JGS003); C. G. stellatus var. mangshanensis (Zhang & Liu RJD0102); D. G. stellatus var. wugongshanensis (Yang & Zhang JGS107).
FIGURE 1 in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 1. SEM images of the abaxial leaf epidermis. A. Gelidocalamus monophyllus (Jiuyi Mountain, Hunan, China). B. G. stellatus var. stellatus (Jinggang Mountain, Jiangxi, China). C. G. stellatus var. wugongshanensis (Wugong Mountain, Jiangxi, China). D. G.stellatus var. mangshanensis (Mangshan, Hunan, China).
FIGURE 6. Gelidocalamus stellatus var. mangshanensis. A in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 6. Gelidocalamus stellatus var. mangshanensis. A. habit; B. fully mature plant; C. new shoot; D. branching and leaves; E. node and branches; F. young culm, transverse section; G. node and internodes; H–K. culm leaves; L. the apical of new shoot; M. foliage leaf sheath. (Scale bars = 1 m [A]; 10 cm [B–D, L]; 0.5 cm [E–K, M])
FIGURE 4 in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 4. Geographical distribution of Gelidocalamus monophyllus (rhombus) and Gelidocalamus stellatus (pentacle). Solid pentacles, empty pentacles and gray pentacles represent three varieties, i.e. G. stellatus var. stellatus, G. stellatus var. wugongshanensis and G. stellatus var. mangshanensis, respectively.
FIGURE 5. Gelidocalamus stellatus var. stellatus. A in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 5. Gelidocalamus stellatus var. stellatus. A. habit; B. mature plant; C. new shoot; D–F. culm and branches; G–K. culm leaves; L. twig; M. foliage leaf. (Scale bars = 1 m [A]; 5 cm [B–E, G, H, L, M]; 0.5 cm [F, I–K])
FIGURE 3. Gelidocalamus monophyllus. A in Re-evaluation of the taxonomy of Gelidocalamus stellatus (Poaceae: Bambusoideae) and its infraspecific taxa from southern China
FIGURE 3. Gelidocalamus monophyllus. A. habit; B. mature culm; C–E. new shoot and rhizomes; F. branches and foliage leaf; G–M. young culm and node (G and H), culm leaf sheath when young (H and I), old culm and node (J), culm leaf sheath when old (K and L), and branches (M). (Scale bars = 0.5 m [A–B]; 5 cm [C–F]; 1 cm [G–M])
FIGURE 1 in Aspidistra austroyunnanensis (Asparagaceae), a new species from southern Yunnan, China
FIGURE 1. Aspidistra austroyunnanensis. (A) habit; (B) flower; (C) longitudinal section of a flower (showing stamens and pistil); (D) longitudinal section of a flower (showing stigma and stamens); (E) pistil; (F) stigma from apical view; (G) stigma from abaxial view; (H) stamen from frontal view; (I) stamen from lateral view. Scale bars: A = 10 cm, B–D = 1 cm, E–G = 5 mm, H–I = 1 mm. Drawn by Nan Jia.
FIGURE 2 in Aspidistra austroyunnanensis (Asparagaceae), a new species from southern Yunnan, China
FIGURE 2. Aspidistra austroyunnanensis. (A–B) plant in nature habit; (C) rhizome; (D–H) flower; (I) longitudinal section of a flower (showing stamens and pistil); (J) longitudinal section of a flower (showing stigma and stamens); (K) stamen from lateral view; (L) stamen from frontal view; (M) stigma from abaxial view; (N) stigma from apical view. Scale bars: A, B = 10 cm, C–J, M–N = 1 cm, K–L = 1 mm.
FIGURE 4 in A new rust species of Diaphanopellis on Rhododendron oreodoxa from Southern China
FIGURE 4. Phylogenetic tree constructed by maximum parsimony and Bayesian analyses based on ITS sequences of related rust genera. Bootstrap values were calculated from 1,000 replications. Parsimony bootstrap (before the slash marks) and Bayesian posterior probabilities (after the slash marks) greater than 50% are shown. Bars: 10 nucleotide substitutions. New species are shown in bold.
FIGURE 3 in A new rust species of Diaphanopellis on Rhododendron oreodoxa from Southern China
FIGURE 3. Phylogenetic tree constructed by maximum parsimony and Bayesian analyses based on ITS sequences of rust species of Coleosporiaceae. Bootstrap values were calculated from 1,000 replications. Parsimony bootstrap (before the slash marks) and Bayesian posterior probabilities (after the slash marks) greater than 50% are shown. Bars: 10 nucleotide substitutions. New species are shown in bold.
FIGURE 2 in A new rust species of Diaphanopellis on Rhododendron oreodoxa from Southern China
FIGURE 2. Diaphanopellis purpurea on Rhododendron oreodoxa (BJFC-R01698). A. Telia in large groups, gelatinous, orange, erumpent; B. Showing transparent sheaths extending beyond teliospores; C. Cross section of telium, showing transparent sheaths around teliospores; D. Globose to subglobose urediniospores; E. Urediniospores; F. Urediniospores showing warts coronate, fingerlike, or irregular in shape; G. Concave outer surface of peridial cells; H. Warted inner surface of peridial cells. Scale bars: A = 200 μm; B = 50 μm; C, D, E, G = 10 μm; F = 0.5 μm; H = 20 μm.
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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.