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2,256 results for “Southern China”
FIGURES 2–9 in Gyrosigma xiamenense sp. nov. (Bacillariophyta) from the middle intertidal zone, Xiamen Bay, southern China
FIGURES 2–9. Gyrosigma xiamenense sp. nov., 2–7. External views. 8–9. Internal views, LM. 2–4. Three valves belonging to one type of valves, either epivalves or hypovalves. 3. Photograph of holotype specimen. 5–7. Three valves belonging to the other type of valves, either epivalves or hypovalves. 5. Photograph of isotype. 8–9. Internal views of two types of valves. Scale bars = 20 μm for all figures.
FIGURE 5 in A new species and a new combination in the genus Aureoboletus (Boletales, Boletaceae) from southern China
FIGURE 5. SEM of basidiospores from dried specimens of Aureoboletus longicollis (HKAS 59808) a. Bar = 10 μm; b. Bar = 5 μm.
FIGURE 3 in A new species and a new combination in the genus Aureoboletus (Boletales, Boletaceae) from southern China
FIGURE 3. Microscopic features of Aureoboletus clavatus (HKAS 59802, holotype). a. Basidia and pleurocystidium. b. Basidiospores. c. Cheilocystidia. d. Pileipellis. e. Stipitipellis. Bars = 10 μm.
FIGURE 2 in A new species and a new combination in the genus Aureoboletus (Boletales, Boletaceae) from southern China
FIGURE 2. Basidiomata of Aureoboletus species. a–d. A. clavatus (a, d from HKAS 59802, holotype; b, c from N.K. Zeng 807-1); e–i. A. longicollis (e, h–i from HKAS 59808; f–g from HKAS 59810) (photo N.K. Zeng).
FIGURE 4 in A new species and a new combination in the genus Aureoboletus (Boletales, Boletaceae) from southern China
FIGURE 4. Microscopic features of Aureoboletus longicollis (HKAS 59808). a. Basidia and pleurocystidium. b. Basidiospores. c. Cheilocystidia. d. Pileipellis. e. Stipitipellis. Bars = 10 μm.
FIGURE 1. Phylogram inferred from a in A new species and a new combination in the genus Aureoboletus (Boletales, Boletaceae) from southern China
FIGURE 1. Phylogram inferred from a combined dataset (nrLSU, tef1-a and rpb1) using RAxML. RAxML likelihood bootstrap (BS ≥ 50 %) and Bayesian posterior probabilities (PP ≥ 0.95) are indicated above the branches as RAxML BS/PP.
FIGURES 31–34 in A new Eunotia (Bacillariophyta: Eunotiales) species from Karst formations of southern China
FIGURES 31–34. Eunotia sudeticiformis sp. nov. Narrow morphotype. SEM, internal views. 31. Whole valve view showing striae in trough–like openings in the center, but with individual areolae at the dorsal and ventral margins. Scale bar = 1 μm. 32, 33. Center of the valve showing areolae in one (Fig. 32) or two rows (Fig. 33) at the dorsal and ventral portions of the valve as well as in trough-like lines in the center. Scale bars = 1 μm. 34. Valve apex with helictoglossae and large rimportulae evident. Small spines can be seen on the exterior of the dorsal edge of the valve. Pseudoseptum is small at the apex. Scale bar = 1 μm.
FIGURES 28–30 in A new Eunotia (Bacillariophyta: Eunotiales) species from Karst formations of southern China
FIGURES 28–30. Eunotia sudeticiformis sp. nov. Narrow morphotype. SEM, external views. 28. Whole valve showing striae in shallow troughs, distal raphe ends curved onto the valve face near the apex and small spines scattered along the dorsal margin. Scale bar = 1 μm. 29. Close up of valve center with each areola with a thickened rim that occludes the opening (compare with the few areolae without occlusions). Note that there are few short striae intercalated between the full-length striae on the dorsal margin. Scale bar = 1 μm. 30. Valve apex with distal raphe end barely curving onto the valve face. A few larger areolae are positioned near the raphe opening. The apex on the valve face is unornamented. On the mantle the rimoportula opening is evident. Scale bar = 1 μm.
FIGURES 24–27 in A new Eunotia (Bacillariophyta: Eunotiales) species from Karst formations of southern China
FIGURES 24–27. Eunotia sudeticiformis sp. nov. Wider morphotype. SEM, internal views. 24, 25. Valve views, showing the striae are trough–like. Short striae between the regular striae are evident on the dorsal margin. Scale bars = 1 μm. 26. Valve apex with a single rimportula and helictoglossa evident. A pseudoseptum is present at the terminus. Scale bar = 1 μm. 27. Pseudoseptum, helictoglossa and grooved striae are evident at the terminus. Scale bar = 1 μm.
FIGURES 19–23 in A new Eunotia (Bacillariophyta: Eunotiales) species from Karst formations of southern China
FIGURES 19–23. Eunotia sudeticiformis sp. nov. Wider morphotype. SEM, external views. 19. Valve view of entire valve, showing distal raphe ends extending slightly onto the valve face. Striae occur in narrow channels. Distinctly larger poroids are present near the distal raphe ends. Scale bar = 1 μm. 20. Valve apex showing areolae have thin, narrow rims. Two larger openings are evident near the distal raphe end. Scale bar = 1 μm. 21. Valve center with uniseriate striae that extend onto the dorsal mantle. A few short striae along the dorsal margin are interspersed amongst the rest of the striae. Areolae are bordered by a thin rim. Scale bar = 1 μm. 22. Girdle view showing the numerous cingula, each bearing several rows of small poroids. Striae are present on the mantle, and raphe has dilated proximal ends. Scale bar = 1 μm. 23. Closer view of valve in girdle view showing raphe branch, disorganized areolae near the raphe and distinct opening of the rimportula. Scale bar = 1 μm.
FIGURES 1–18 in A new Eunotia (Bacillariophyta: Eunotiales) species from Karst formations of southern China
FIGURES 1–18. Eunotia sudeticiformis sp. nov. LM. Valve view, size diminution series. 1–9. Wider morphotype. 5. Holotype. 10–18. More narrow morphotype. Scale bar = 10 μm.
FIGURE 2 in Hyphodontia dimitica and H. subefibulata spp. nov. (Schizoporaceae, Hymenochaetales) from southern China based on morphological and molecular characters
FIGURE 2.Microscopic structures of Hyphodontia dimitica (Dai 11686).a Basidiospores. b Basidia and basidioles. c Rhombic crystals. d Hyphae from trama. e Hyphae from subiculum.
FIGURE 5 in Hyphodontia dimitica and H. subefibulata spp. nov. (Schizoporaceae, Hymenochaetales) from southern China based on morphological and molecular characters
FIGURE 5. Strict consensus tree illustrating the phylogeny of Hyphodontia and its related species generated by maximum parsimony based on ITS sequences. Branches are labeled with parsimony bootstrap proportions (before slanting line) high than 50% and bayesian posterior probabilities (after slanting line) more than 0.95.
FIGURE 4 in Hyphodontia dimitica and H. subefibulata spp. nov. (Schizoporaceae, Hymenochaetales) from southern China based on morphological and molecular characters
FIGURE 4. Microscopic structures of Hyphodontia subefibulata (Dai 10526).a Basidiospores. b Basidia and basidioles. c Cystidia. d Hyphae from trama. e Hyphae from subiculum.
FIGURE 1 in Hyphodontia dimitica and H. subefibulata spp. nov. (Schizoporaceae, Hymenochaetales) from southern China based on morphological and molecular characters
FIGURE 1. Basidiocarps of Hyphodontia dimitica (Dai 15321). a. A fresh basidiocarp. b. Pore surface.
FIGURE 3 in Hyphodontia dimitica and H. subefibulata spp. nov. (Schizoporaceae, Hymenochaetales) from southern China based on morphological and molecular characters
FIGURE 3. Basidiocarps of Hyphodontia subefibulata (Dai 10803). a. A fresh basidiocarp. b. Spine surface.
FIGURE 11. Polystichum paucicarpum.—A. Limestone mountains where the new species was discovered.—B, C in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 11. Polystichum paucicarpum.—A. Limestone mountains where the new species was discovered.—B, C. Habitats and plants.— D. Portions of adaxial laminae.—E. Portion of stipe showing scales.—F, G. Polar views of spores under SEM.
FIGURE 3. Polystichum crassirachis.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 3. Polystichum crassirachis.—A. Upper view of the sinkole where the new species was discovered.—B. Habitat and plant.— C. Portion of abaxial lamina.—D. Abaxial lamina.—E. Adaxial lamina.—F. Lower portion plant.—G. Middle portions of stipes.—H. Portions of pinnae showing sori.—I. Equatorial view of spore under SEM.
FIGURE 7. Polystichum multispinulosum.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 7. Polystichum multispinulosum.—A. Inside view of the cave where the new species was discovered.—B, C. Habitats and plants.—D. Portion of abaxial lamina.—E. Portion of adaxial lamina.—F. Lower portion of plant.—G. Portion of pinna showing sori.—H. Equatorial view of spore under SEM.—I. Polar view of spore under SEM.
FIGURE 13. Polystichum serratissimum.—A in Seven new species of Polystichum (subg. Haplopolystichum; Dryopteridaceae) from southern China
FIGURE 13. Polystichum serratissimum.—A. Inside view of the sinkole where the new species was discovered.—B, C. Habitats and plants.—D–F. Portions of abaxial laminae.—G. Portions of stipes showing scales.—H. Equatorial view of spore under SEM.
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.