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2,256 results for “Southern China”
FIGURE 1 in A new rust species of Diaphanopellis on Rhododendron oreodoxa from Southern China
FIGURE 1. Diaphanopellis purpurea on Picea purpurea (BJFC-R02299). A. Oblong-ellipsoid aeciospores (LM); B. Aecial peridium with smooth inner surface; C. aeciospores; D. Aecial peridium with deeply convex, striate or rugulose outer surface; E. Densely echinulate on aeciospores surface. Scale bars: A, C, D, E = 10μm; B = 20 μm.
FIGURE 2. Platanthera australis.A in Platanthera australis, a new species of Orchidaceae from southern China
FIGURE 2. Platanthera australis.A: Habit. B: Inflorescence. C: Flower in face view. D: Flower in side view. E: Flower in back view. F: Column. (scale: B 1 cm; C & D 5 mm; E 3 mm; F 1 mm.)
FIGURE 1. Platanthera australis. A in Platanthera australis, a new species of Orchidaceae from southern China
FIGURE 1. Platanthera australis. A: Habit. B: Flower (front view). C: Flower (side view). D: Ovary, column and lip (side view). E: Sepals, petals and lip. F: Column. (Drawn by Jing Tian after the holotype).
FIGURE 1 in Pythium cedri sp. nov. (Pythiaceae, Pythiales) from southern China based on morphological and molecular characters
FIGURE 1. Strict consensus tree illustrating the phylogeny of Pythium in clade D species generated by maximum parsimony based on ITS+COI 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. Phy. refers to Phytopythium.
FIGURE 3 in Pythium cedri sp. nov. (Pythiaceae, Pythiales) from southern China based on morphological and molecular characters
FIGURE 3. Asexual and sexual reproductive bodies of Pythium cedri (Chen 4). A. Mycelium. B. Hyphal swellings. C. Various sporangia. D. Globose and toruloid sporangia. E. Intercalary sporangium. F–H. Toruloid sporangia. I. Terminal sporangium. J. A terminal oogonium with a nearly plerotic oospore and a monoclinous antheridium. K. Plerotic oospore and round antheridial cell. L. Elongated antheridial cell wavy in contour. M. Plerotic oospore and two antheridia. N. Clustering of several antheridial cells around the oogonium. O. A terminal oogonium with a nearly plerotic oospore and a monoclinous antheridium. Scale bars A–I=10 μm, J–O=20μm.
FIGURES 13–18 in Navicula amoyensis sp. nov. (Bacillariophyceae), a new benthic brackish diatom species from the Jiulong River estuary, Southern China
FIGURES 13–18. SEM micrographs of Navicula amoyensis sp. nov. Figs 13, 14. Internal views of entire valves of different frustules, showing an additional lateral thickening at the centre of the accessory rib (arrow). Fig. 15. Internal valve view showing details of central raphe fissures with a distinct central interruption (arrow). Fig. 16. Internal view showing details of the valve apices, where linear raphe axis distally terminated by more or less rounded helictoglossa (arrow) and positioned just below the terminal area. Fig. 17. Internal view. Striae composed of simple slit-like lineolae, positioned in shallow and narrow depressions (arrow). Fig. 18. Internal central raphe endings, interrupted by an extended thickening accessory rib (arrow). Scale bars in figs 13, 14 = 5 μm; fig. 15 = 2μm; figs 16–18 = 1 μm.
FIGURES 19–22 in Navicula amoyensis sp. nov. (Bacillariophyceae), a new benthic brackish diatom species from the Jiulong River estuary, Southern China
FIGURES 19–22. SEM micrographs of internal and girdle views of Navicula amoyensis under SEM. Figs 19, 20. Internal view of entire valves of different frustules. Note that the helictoglossa is almost central (arrow). Figs 21, 22. Girdle views showing the constricted frustules in the middle. External view of frustules showing broad girdle with pectinate margin (arrow). Scale bars in figs 19–22 = 10 μm.
FIGURES 9–12. Fig. 9 in Navicula amoyensis sp. nov. (Bacillariophyceae), a new benthic brackish diatom species from the Jiulong River estuary, Southern China
FIGURES 9–12. Fig. 9. External view of entire valve with terminal areas (arrow). Fig. 10. Central area showing the distinct continuous external central raphe endings. Figs 11, 12. Valve apices showing the external terminal raphe fissures deflected towards on the secondary valve side (arrow). Two rows of apical areolae at the valve apices. Scale bars in fig. 9 = 10 μm; fig. 10 = 2 μm; figs 11, 12 = 1 μm.
FIGURE 2 in Two new species of Chalciporus (Boletaceae) from southern China revealed by morphological characters and molecular data
FIGURE 2. Basidiomata of Chalciporus. a–d. Chalciporus citrinoaurantius (a–b: from GDGM44776, holotype!; c–d: from GDGM44480); e–f. Chalciporus hainanensis (GDGM44464, holotype!). Bars = 2 cm. Photos by: Ming Zhang.
FIGURE 4 in Two new species of Chalciporus (Boletaceae) from southern China revealed by morphological characters and molecular data
FIGURE 4. Microscopic characters of Chalciporus hainanensis (GDGM44464, holotype!). a. Basidiospores; b. Pleurocystidia; c. Basidia; d. Pileipellis. Drawings by: Ming Zhang.
FIGURE1 in Two new species of Chalciporus (Boletaceae) from southern China revealed by morphological characters and molecular data
FIGURE1. Phylogenetic analysis of Chalciporus species inferred from Maximum Likelihood (ML) analysis of lsu+tef1-α+rpb2 sequences are shown. Bootstrap values (ML ≥ 70%) and Bayesian posterior probabilities (BPP ≥ 0.95) are shown around branches. The two new species' sequences are indicated in bold face. Questionable sequences are marked with quotation marks.
FIGURE 3 in Two new species of Chalciporus (Boletaceae) from southern China revealed by morphological characters and molecular data
FIGURE 3. Microscopic characters of Chalciporus citrinoaurantius (GDGM44476, holotype!). a. Basidiospores; b. Basidia; c. Pleurocystidia; d. Pileipellis. Drawings by: Ming Zhang.
FIGURE 1 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 1. Phylogram generated from Maximum Likelihood (ML) method based on rDNA ITS sequences performed by RAxML. One thousand bootstrap replicates followed by a heuristic ML tree search was adopted and bootstrap values higher than 70% are shown on the left of "/" and Bayesian posterior probabilities (PP) values> 0.95 are shown on the right. Three novel taxa are shown in bold.
FIGURE 6 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 6. Russula subatropurpurea. (Holotype GDGM70634). a. Basidia; b. Cheilocystidia; c. Pleurocystidia; d. Pileipellis; e. Pileocystidia; f. Caulocystidia. Scale bars= 10 μm.
FIGURE 5. Russula subatropurpurea. a–b in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 5. Russula subatropurpurea. a–b. Scanning Electronic Micrographs of basidiospores; c–f. Photographs of basidiomata (a, c, e. Holotype GDGM70634; b, d, f. Isotype GDGM70633). Scale bars: a–b= 1 μm; c–f= 1 cm.
FIGURE 3 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 3. Russula bubalina (Holotype GDGM70728). a. Basidia; b. Cheilocystidia; c. Pleurocystidia; d. Pileipellis; e. Pileocystidia; f. Caulocystidia. Scale bars= 10 μm.
FIGURE 4 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 4. Russula pseudobubalina (Holotype GDGM70632). a. Basidia; b. Cheilocystidia; c. Pleurocystidia; d. Pileipellis; e. Pileocystidia; f. Caulocystidia. Scale bars= 10 μm.
FIGURE 2 in Three novel species of Russula from southern China based on morphological and molecular evidence
FIGURE 2. Scanning Electronic Micrographs and photographs of fruiting bodies. a–c. Russula bubalina (Holotype GDGM70728); d–f. Russula pseudobubalina (Holotype GDGM70632). Scale bars: a, d= 1 cm; b–c, e–f= 10 μm.
FIGURE 2. Curcuma tongii Y. H. Tan & L. X. Zhang. A in Curcuma tongii, a new species of Curcuma subgen. Ecomatae (Zingiberaceae) from southern Yunnan, China
FIGURE 2. Curcuma tongii Y. H. Tan & L. X. Zhang. A. Habit; B. Inflorescence (top view) C. Flowering individual; D. Detail of leaf blade abaxially (ligule in insets); E. Root tuber (cross section); F. Bract and flowers (show bract supporting three flowers); G. Stamen attached to floral tube (behind, side and front view); H. Calyx; I. Dorsal corolla lobe; J. Lateral corolla lobes; K. Lateral staminodes, L. Floral tube with labellum and stamen attached; M. Ovary; N. Epigynous glands. Photographed by H.B. Ding and Y.H. Tan (from Yun-Hong Tan 7168 & Yun-Hong Tan T0158).
FIGURE 1. Curcuma tongii Y. H. Tan & L. X. Zhang. A-B in Curcuma tongii, a new species of Curcuma subgen. Ecomatae (Zingiberaceae) from southern Yunnan, China
FIGURE 1. Curcuma tongii Y. H. Tan & L. X. Zhang. A-B. Habit; C.Ligule; D. Bract. E. Flower (front view); F. Flower and flower bud (behind view); G. Floral tube with corolla lobes and stamen attached; H. Pistil; I. Dorsal corolla lobe; J. Lateral staminodes; K. Labellum; L. Stamen with style and stigma inside (side view). Drawn by: Yun-Xi Zhu.
ScienceDex guides
Understand access before you commit
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.