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231
datasets available to search
ShareScore release 0.9.0
Dataset results
231 results for “Sichuan Province”
FIGURE 1 in Three Excavatum species Tuber badium, T. depressum and T. verrucosivolvum from Sichuan Province, China
FIGURE 1. RAxML tree based on ITS sequences of T. badium, T. depressum, T. verrucosivolvum and related species. Bootstrap (BS) values derived from Maximum Likelihood (ML) analysis (≥ 70%) and Posterior Probabilities (PPs) from Bayesian Inference (≥ 0.90) are shown above or beneath the branches at nodes. Novel sequences are printed in bold.
FIGURE 5 in Three Excavatum species Tuber badium, T. depressum and T. verrucosivolvum from Sichuan Province, China
FIGURE 5. Tuber verrucosivolvum (HKAS 88863, holotype). a. Ascoma and sections. b. Surface warts of ascoma. c, d. Peridium sections. e. Light micrograph (LM) of asci and ascospores. f. Scanning electron micrograph of ascospore.
FIGURE 4 in Three Excavatum species Tuber badium, T. depressum and T. verrucosivolvum from Sichuan Province, China
FIGURE 4. Tuber depressum (HKAS 95396, holotype). a, c. Ascomata and sections. b. Surface warts of ascoma d. Peridium sections. e. Scanning electron micrograph of ascospore. f. Light micrograph (LM) of asci and ascospores.
FIGURE 3 in Three Excavatum species Tuber badium, T. depressum and T. verrucosivolvum from Sichuan Province, China
FIGURE 3. Tuber badium (HKAS 88789, holotype). a, c. Ascoma and sections. b. Peridium sections. d. Scanning electron micrograph of ascospore. e, f. Light micrograph (LM) of asci and ascospores.
FIGURE 2 in Three Excavatum species Tuber badium, T. depressum and T. verrucosivolvum from Sichuan Province, China
FIGURE 2. RAxML tree based on ITS-nrLSU combined sequences of T. badium, T. depressum, T. verrucosivolvum and related species. Bootstrap (BS) values derived from Maximum Likelihood (ML) analysis (≥ 70%) and Posterior Probabilities (PPs) from Bayesian Inference (≥ 0.90) are shown above or beneath the branches at nodes. Novel sequences are printed in bold.
FIGURES 55–67. E. pseudogroenlandica. 55–62 in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 55–67. E. pseudogroenlandica. 55–62. LM images; 63–67. SEM images; 63. External valve view; 64. Internal valve view; 66. Terminal ends of external valve; 65, 67. Terminal ends of internal valve, arrow show a rimoportula. LM scale bars, 10 μm.
FIGURES 39–54. E. pomeranica. 39–43 in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 39–54. E. pomeranica. 39–43. LM images; 44–46. SEM images; 44. External valve view; 45. Terminal ends of external valve; 46. Terminal ends of internal valve. Figs 47–54: E. michaelis. 47–51. LM images; 52–54. SEM images; 52. External valve view; 53–54. Terminal ends of external valve. LM scale bars, 10 μm.
FIGURES 28–38. E. odebrechtiana. 28–35 in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 28–38. E. odebrechtiana. 28–35. LM images; 36–38. SEM images; 36. Half external valve view; 37. Terminal ends of external valve; 38. Arrow show short striae of mantle in the middle. LM scale bars, 10 μm.
FIGURES 68–79. E. superpaludosa. 68–74 in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 68–79. E. superpaludosa. 68–74. LM images; 75–79. SEM images; 75. External valve view; 76–78. The ends of the raphe; 79. Areolae and velum. LM scale bars, 10 μm.
FIGURES 19–27. E in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 19–27. E. filiformis sp. nov. 19–22. LM images; 21. Holotype; 23–27. SEM images; 23–24 Terminal ends of internal valve, arrow show a hyaline areas; 25–26. Terminal ends of external valve, arrow show terminal raphe fissures; 27. External valve view. LM scale bars, 10 μm.
FIGURE 1 in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURE 1. Location of Mugecuo Scenic Area. Distribution of sample collection sites are indicated by black dots.
FIGURES 2–18. E in Eunotia (Bacillariophyta) biodiversity from high altitude, freshwater habitats in the Mugecuo Scenic Area, Sichuan Province, China
FIGURES 2–18. E. mugecuo sp. nov.. 2–13. LM images; 6. Holotype; 14–18 SEM images; 14. External valve end; 15. External valve view; 16. Internal valve view; 17–18. Terminal ends of internal valve, arrow show a rimoportula. LM scale bars, 10 μm.
FIGURES 10–13. SEM, external views. Fig. 10 in Halamphora daochengensis sp. nov., a new freshwater diatom species (Bacillariophyceae) from a small mountain lake, Sichuan Province, China
FIGURES 10–13. SEM, external views. Fig. 10. External view of an entire valve. Fig. 11. Ventral view of entire frustule with girdle bands. Fig. 12. Entire valve seen from the dorsal side in oblique view showing the dorsal mantle and girdle bands. Fig. 13. Entire valve seen from the dorsal side showing the girdle band areolae. Scale bars = 10 μm.
FIGURES 1–9 in Halamphora daochengensis sp. nov., a new freshwater diatom species (Bacillariophyceae) from a small mountain lake, Sichuan Province, China
FIGURES 1–9. LM micrographs of the type population of Halamphora daochengensis in Lake Congqiancuo. Figs 1–7. Valve views, showing the valve variability of the holotype population. Figs 8, 9. Light micrographs showing the frustule in girdle view. Scale bar = 10 μm.
FIGURES 14–19 in Halamphora daochengensis sp. nov., a new freshwater diatom species (Bacillariophyceae) from a small mountain lake, Sichuan Province, China
FIGURES 14–19. SEM, detail of external valve views. Fig. 14. View of central area with numerous girdle bands. Figs 15, 16. View of frustule end and girdle bands with rows of rounded poroids. Fig. 17. External detail of the valve centre. Fig. 18. External detail of valve apex showing the prominent raphe ledge. Fig. 19. External detail of part of the dorsal valve, valve face/mantle margin and mantle. Scale bars =2 μm (Figs 14, 17), 3 μm (Fig. 18), 5 μm (Figs 15, 16, 19).
FIGURES 20–25. SEM, internal valve views. Fig. 20 in Halamphora daochengensis sp. nov., a new freshwater diatom species (Bacillariophyceae) from a small mountain lake, Sichuan Province, China
FIGURES 20–25. SEM, internal valve views. Fig. 20. Internal view of entire valve with girdle bands. Fig. 21. Oblique view of valve. Fig. 22, 23. Internal view of valve apex with prominent helictoglossa. Fig. 24. Internal view of valve centre with girdle bands. Fig. 25. Internal view of valve centre with fused helictoglossa. Scale bars = 2 μm (Figs 22, 23), 3 μm (Fig. 25), 5 μm (Figs 20, 21, 24).
FIGURES 352–355 in Five new Achnanthidiaceae species (Bacillariophyta) from Jiuzhai Valley, Sichuan Province, Southwestern China
FIGURES 352–355. Achnanthidium subtilissimum sp. nov. SEM views of rapheless valve. 352. External view of an entire rapheless valve. 353. Detail of the areolae on the external of the rapheless valve. 354. Internal view of an entire rapheless valve. 355. Internal areola openings with fine hymenate structures. Scale bars 1 μm (352, 354), 0.1 μm (353, 355).
FIGURES 356–404 in Five new Achnanthidiaceae species (Bacillariophyta) from Jiuzhai Valley, Sichuan Province, Southwestern China
FIGURES 356–404. Kolbesia sichuanenis sp. nov. 356–378. LM of raphe valve. 379–402. LM of rapheless valve. 356, 379. Holotype. 403–404. SEM views of raphe valve. 403. External view of an entire raphe valve. 404. Internal view of an entire raphe valve. Scale bars 10 μm (356–402), 1 μm (403–404).
FIGURES 232–289 in Five new Achnanthidiaceae species (Bacillariophyta) from Jiuzhai Valley, Sichuan Province, Southwestern China
FIGURES 232–289. Achnanthidium limosua sp. nov. 232–259. LM of raphe valve. 260–285. LM of rapheless valve. 242, 273. Holotype. 286–289. SEM views of raphe valve. 286. External view of an entire raphe valve. 287. Detail of the areolae on the external of the raphe valve. 288. Internal view of an entire raphe valve. 289. Internal areola openings with fine hymenate structures. Scale bars 10 μm (232– 285), 1 μm (286, 288), 0.1 μm (287, 289).
FIGURES 405–408 in Five new Achnanthidiaceae species (Bacillariophyta) from Jiuzhai Valley, Sichuan Province, Southwestern China
FIGURES 405–408. Kolbesia sichuanenis sp. nov. SEM views of rapheless valve. 405. External view of an entire rapheless valve. 406. Internal view of an entire rapheless valve. 407. Detail of the areolae on the external of the rapheless valve. 408. Internal areola openings with fine hymenate structures. Scale bars 1 μm (405–406), 0.2 μm (407–408).
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)
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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.