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220 results for “Eastern Himalaya”
FIGURE 3 in On two species of Gymnomitrion (Gymnomitriaceae, Marchantiophyta) in the Eastern Sino-Himalaya
FIGURE 3. Gymnomitrion sichuanicum Bakalin & Vilnet: A, B—plant habit, fragment, dorsal view; C–F—leaves. Scales: for A, B—500 μm, C–F—300 μm. All from China-4-2-17 (VBGI).
FIGURE 1–60 in Platessa arborea sp. nov. (Bacillariophyceae): A new tree moss dwelling diatom from the Eastern Himalayas, India
FIGURE 1–60. Light microscope images of Platessa arborea sp. nov. Valves representing the size diminution series. 1–30. Raphesternum valve, and 31–60. Sternum valve. Scale bar: 10 μm.
FIGURE 61–67 in Platessa arborea sp. nov. (Bacillariophyceae): A new tree moss dwelling diatom from the Eastern Himalayas, India
FIGURE 61–67. Platessa arborea sp. nov. SEM. 61. External view of the whole valve (Raphe-sternum valve) showing the striae arrangement and rectangular axial area at the middle of the valve. 62. External view of the whole valve (Sternum valve) showing the broad axial area at the center and biseriate striae near the mantle. 63. External view of apices showing the hooked proximal raphe ends and distal raphe end deflection. 64. Internal view of apices showing the proximal and distal raphe ends curvature and deflection. 65. Internal view of the whole valve (Raphe-sternum valve) showing the opposite deflection of both raphe ends and distal raphe ends with prominent helictoglossae. 66–67. Internal view of the whole valve (Sternum valve) showing the wide axial area and raised interstriae. Scale bars: = 1 μm (Figs 61–67).
The conjunction of climate warming and earthquake exacerbates the risk of river blockages by landslides in the Sedongpu Gully, Eastern Himalaya
<p>The datasets and results of <span>The conjunction of climate warming and earthquake exacerbates the risk of river blockages by landslides in the Sedongpu Gully, Eastern Himalaya, that has been submitted in Journal Geophysical Research Letters. </span></p>
FIGURES 2–3. Himalotrechus humeratus gen. n in A new genus of Trechini beetles from the Eastern Himalaya (Coleoptera: Carabidae)
FIGURES 2–3. Himalotrechus humeratus gen. n., sp. n., paratype, mouth parts: 2—right mandible; 3—right maxillary palpus.
FIGURE 4 in A new genus of Trechini beetles from the Eastern Himalaya (Coleoptera: Carabidae)
FIGURE 4. Male genitalia of Himalotrechus humeratus gen. n., sp. n.: a—lateral view; b—dorsal view; c—parameres.
Figure 3 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas
Figure 3. Phylogenetic trees of the genus Soriculus based on (A) the concatenated mtDNA and (B) the concatenated nDNA using the ML and BI methods. Node numbers indicate Bayesian posterior probabilities (PP) and ultrafast bootstrap supports (UFBoot).
Figure 4 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas
Figure 4. Bayesian phylogenetic tree of genus Soriculus based on the concatenated sequences of 13 mitochondrial PCGs, 12S rRNA, and 16S rRNA genes. Node numbers indicate Bayesian posterior probabilities (PP).
Figure 2 in Multilocus phylogeny and morphological analyses illuminate overlooked diversity of Soriculus (Mammalia: Eulipotyphla: Soricidae), with descriptions of two new endemic species from the eastern Himalayas
Figure 2. Results of the principal components (A) and discriminant function analysis (B) analysis of Soriculus based on the 18 log10- transformed craniomandibular variables.
FIGURE 3. A–F in A new species of Russula (Russulales) from Eastern Himalaya, India
FIGURE 3. A–F. Russula hookeri (holotype). A. Basidiospores as seen in Melzer's reagent; B. Basidia; C. Hymenial cystidia (near gill edge) as observed in Congo Red; D. Hyphal terminations near the pileus margin; E. Hyphal terminations of the pileus center; F. Primordial hyphae at pileus surface. Scale Bars: A=5 μm; B–F=10 μm.
FIGURE 2. A–B in A new species of Russula (Russulales) from Eastern Himalaya, India
FIGURE 2. A–B. Russula hookeri (CUH AM275). A. Fresh basidiomata in the field; B. Scanning Electron Micrograph of basidiospore. Scale Bars: A=10 mm; B=1 μm.
FIGURE 1 in A new species of Russula (Russulales) from Eastern Himalaya, India
FIGURE 1. Maximum likelihood tree (-lnL = 1855.2535) generated using a GTR+I+G model of nucleotide evolution. Numbers to the left of / are MP bootstrap support (MPBS), and those to the right indicate the Maximum likelihood bootstrap (MLBS) support (in bold). MLBS and MPBS values ≥ 70% are shown. Bayesian posterior probabilities (PP)> 0.95 are indicated as black coloured thickened lines and the scale bar represents the expected changes per site. Russula hookeri is placed in bold font to highlight its phylogenetic position in the tree. Categorizations of Russula species within the tree follow classification of Sarnari (1998).
FIGURE 4 in Three new Solomon's Seals (Polygonatum: Asparagaceae) from the Eastern Himalaya
FIGURE 4. Polygonatum luteoverrucosum perigone dissected, photographed in the field by the author, showing the insertion point of the filaments and equal ovary and style lengths. Perigone ca. 1 cm long.
FIGURE 3 in Three new Solomon's Seals (Polygonatum: Asparagaceae) from the Eastern Himalaya
FIGURE 3. Polygonatum luteoverrucosum photographed in the field by the author at approximately 1600 meters, Arunachal Pradesh, India. Perigone ca. 1 cm long.
FIGURE 2 in Three new Solomon's Seals (Polygonatum: Asparagaceae) from the Eastern Himalaya
FIGURE 2. Left, Polygonatum angelicum whole plant, Right, dissected perigone showing the ovary and style length, and the filament insertion and shape. Perigone ca. 1 cm long. Photographed in the field by the author at approximately 2400 meters, Arunachal Pradesh, India.
FIGURE 1 in Three new Solomon's Seals (Polygonatum: Asparagaceae) from the Eastern Himalaya
FIGURE 1. Images of Polygonatum autumnale: left, perigone dissected on a grid with 5 mm gridlines showing the insertion level of the filaments, their distinctive spurs, the long exerted style, and the pink-maculate coloration, photo P. Bruggeman; right-top, plant in field in fruit showing the articulate pedicels and ovoid immature fruit, taken by the author May 2014; right bottom, plant in flower in the field September 2013, photo P. Bruggeman.
FIGURE 3 in New species in the Tricholoma pardinum complex from Eastern Himalaya
FIGURE 3. Microscopical characters of Tricholoma highlandense (HKAS 70192, type). a. Basidia at different stages of development and subhymenium elements; b. Basidiospores; c. Mucronate or clavate cheilocystidia; d. Pileipellis section. Bars a and c = 20 μm, b = 10 μm, d = 30 μm. Drawings by Zhu L. Yang.
FIGURE 2 in New species in the Tricholoma pardinum complex from Eastern Himalaya
FIGURE 2. Basidiomes of Tricholoma. a. Tricholoma highlandense (HKAS 70192, type); b. Tricholoma sinopardinum (HKAS 58001). Bars = 2 cm Photos by Q. Cai and Z.L. Yang.
FIGURE 4 in New species in the Tricholoma pardinum complex from Eastern Himalaya
FIGURE 4. Microscopical characters of Tricholoma sinopardinum. a. Basidiospores (HKAS 46041); b. Hymenium, subhymenium and lamellar trama (HKAS 46041); c. Basidiospores (HKAS 82533, type); d. Basidia (HKAS 82533, type); e. Cheilocystidia (HKAS 82533, type); f. Pileipellis section (HKAS 45529). Bars a and c = 10 μm, b, d, and e = 20 μm, f = 30 μm. Drawings by Zhu L. Yang.
FIGURE 1 in New species in the Tricholoma pardinum complex from Eastern Himalaya
FIGURE 1. Phylogenetic analysis of Tricholoma sect. Pardinicutis species inferred from Maximum Likelihood (ML) analysis of ITS sequences. Bootstrap values (ML,> 50%) are shown above or beneath individual branches. Bayesian posterior probabilities (BI,> 0.95) are indicated with thick branches. The two new species are indicated in bold face.
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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.