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269 results for “Western Himalaya”
FIGURE 5. Lactarius drassinus. a–b in Two new species of genus Lactarius (Russulaceae) from North-western Himalaya, India
FIGURE 5. Lactarius drassinus. a–b. Basidiomata in the field; c. Latex; d. Cheiloleptocystidia; e. Cheilomacrocystidia; f. Basidia; g. Pseudocystidia; h. Pleuromacrocystidia; i. Transverse section through pileipellis; j. Basidiospores under light microscope; k,l. Basidiospores under SEM. Scale bars: a–c=20 mm, d–j = 10 μm. k=2 μm, l=1 μm. Photos a–c by: Y. P Sharma and d–l by: Komal Verma.
FIGURE 4 in Two new species of genus Lactarius (Russulaceae) from North-western Himalaya, India
FIGURE 4. Phylogram resulting from ITS-rDNA sequences: The evolutionary history was inferred by applying maximum likelihood in RAxML GUI 2.0. Bootstrap support values (>50%) obtained from the ML analysis are shown above or below the branches at nodes. Lactarius drassinus is highlighted in bold.
FIGURE 6. Lactarius drassinus. a in Two new species of genus Lactarius (Russulaceae) from North-western Himalaya, India
FIGURE 6. Lactarius drassinus. a. Basidia; b. Basidiospores; c. Pseudocystidia; d. Pleuromacrocystidia; e. Paracystidia; f. Pileipellis. Scale bars: a, c–f =10 μm, b=1 μm. Drawings by: Tahir Mehmood.
FIGURE 3. Lactarius sarthalanus. a in Two new species of genus Lactarius (Russulaceae) from North-western Himalaya, India
FIGURE 3. Lactarius sarthalanus. a. Basidia; b. Basidiospores; c. Pseudocystidia; d. Marginal cells; e. Pileipellis; f. Paracystidia. Scale bars: a, c–f = 10 μm b =2 μm. Drawings by: Komal Verma.
FIGURE 2. Lactarius sarthalanus. a–b in Two new species of genus Lactarius (Russulaceae) from North-western Himalaya, India
FIGURE 2. Lactarius sarthalanus. a–b. Basidiomata in the field; c. Gills showing latex; d. Cheiloleptocystidia; e. Pseudocystidia; f. Basidia; g. Transverse section through pileipellis; h. Marginal cells; i. Basidiospores under light microscope; j,k. Basidiospores under SEM. Scale bars: d–j = 10 μm. k=2 μm. Photos by: Komal Verma.
FIGURE 1 in Swertia patnitopiansis, a new species of Gentianaceae from North-Western Himalaya, India
FIGURE 1. Location map of Swertia patnitopiansis in Himalaya; (a) locations of Patnitop and Nathatop Hills in India, (b) satellite image of vegetation composition and location of new species, (c–d) natural habitat of S. patnitopiansis.
FIGURE 2 in Swertia patnitopiansis, a new species of Gentianaceae from North-Western Himalaya, India
FIGURE 2. Illustration of Swertia patnitopiansis, sp. nov.; (a) plant habit, (b) complete flower, (c) five number sepals, (d) a single sepal (e) five number petals with nectaries, (f) a single petal, (g) five number stamens, (h) a single stamen with filament and anther, (i) carpel with ovary, style and bifid stigma.
FIGURE 4 in Pyrrosia sarthalensis, a new species of Polypodiaceae from Kathua District, Jammu and Kashmir, Western Himalaya, India
FIGURE 4. Scanning electron microscope (SEM) micro-morphology of Pyrrosia sarthalensis displaying the structures of rhizome (a), lamina (b) and sporangia (c-d) (Courtesy: Kamlesh Singh, IIIM Jammu SEM/TEM Division).
FIGURE 1 in Pyrrosia sarthalensis, a new species of Polypodiaceae from Kathua District, Jammu and Kashmir, Western Himalaya, India
FIGURE 1. Distribution map of Pyrrosia sarthalensis in the Western Himalaya; (a) location map of India, (b) Kathua district in Jammu & Kashmir, (c) Bani Valley in Kathua district (Photos: Bikarma Singh).
FIGURE 2. Ceropegia kumaonensis Kamal Kishor, G.S in A New Species of Ceropegia L. (Apocynaceae) from Uttarakhand, Western Himalaya, India
FIGURE 2. Ceropegia kumaonensis Kamal Kishor, G.S. Rawat, & S.S. Samant a. Habit b. Rootstock c–d. Stem with flower buds e. Flowering twig f. Flower g. Corona (Top view) h. Corona (Side view) Drawn from K. Kishor-2512 by Kamal Kishor.
FIGURE 1. Ceropegia kumaonensis Kamal Kishor, G.S. Rawat & S.S. Samant a–c in A New Species of Ceropegia L. (Apocynaceae) from Uttarakhand, Western Himalaya, India
FIGURE 1. Ceropegia kumaonensis Kamal Kishor, G.S. Rawat & S.S. Samant a–c. Habit; d&e. Inflorescence and flowers; f. Follicles and seeds; g&h. Corona.
FIGURE 1 in Typification and threat assessment of Jasminum parkeri (Oleaceae), a point endemic and critically endangered species of Indian Western Himalaya
FIGURE 1. Lectotype (K000901337) http://specimens.kew.org/herbarium/K000901337 and Epitype (K000901336) http://specimens. kew.org/herbarium/K000901336 of Jasminum parkeri Dunn © copyright of the Board of Trustees of the Royal Botanic Gardens, Kew.
FIGURE 4 in Poa sorengiana (Poaceae): a new species from Western Himalaya, India
FIGURE 4. Poa sorengiana: A—Uppermost ligule; B.—Spikelet; C.—Floret; D.—Lower half of the floret; E.—Upper Glume; F.— Lower Glume; G.—Palea; H.—Lemmas; I & J.—Anther.
Data from: Noninvasive sampling reveals population genetic structure in the Royle’s pika, Ochotona roylei, in the western Himalaya
Open the record for dataset details and reuse information.
Fig. 4 in Nebria (Patrobonebria) incognita n. sp. and Nebria (P. ) hiekeiana n. sp., two new species from the Western Himalaya, with remarks on Nebria (P. ) desgodinsi (Coleoptera, Carabidae, Nebriinae)
Fig. 4. Anatomy (schematic) of the mentum in Patrobonebria.
Inventory and GLOFs susceptibility of pro-glacial lakes in Chenab basin, western Himalaya
<p><span>Global warming has resulted in an increase in glacial mass loss, leading to the formation and expansion of numerous glacial lakes across high mountain areas worldwide. The expansion of glacial lakes and subsequent Glacial Lake Outburst Floods (GLOFs) pose a significant threat and cause catastrophic damage to livelihoods and infrastructure up to hundreds of kilometers downstream. Previous studies have reported the rapid expansion of glacial lakes and several notable destructive past GLOF events in the Himalayan region, suggesting a necessity for timely and updated inventory and GLOF susceptibility at basin scale. Here, an updated inventory of pro-glacial lakes across the Chenab basin, western Himalayas is generated based on 10-m Sentinel-2 datasets for 2022. Additionally, temporal changes and GLOF susceptibility of glacial lakes (>0.05 km²) were evaluated using multi criteria-based Analytical Hierarchical Process (AHP) where nine factors are considered. Glacial lakes are classified into low, medium, high, and very high GLOF susceptibility classes depending on their susceptibility index. The result shows the presence of 419 lakes (>0.001 km²) with a total area of 9.97 ± 0.67 km² across the basin in 2022. <span>The total area of the glacial lakes in 1990 was 3.92 ± 0.58 km², which expanded by </span></span><span>∼</span><span>75%, reaching 6.86 ± 0.25 km² in 2022. </span><span>Furthermore, out of 42 lakes (>0.05 km²) assessed, six were identified with very high GLOF susceptibility. We underline that the role of local geomorphology (i.e., avalanche, rockfall) and pronounced glacier-lake interaction under warming climate scenarios likely increase the GLOF susceptibility in the region. Regular monitoring and more detailed fieldwork-based investigation for these highly susceptible glacial lakes are necessary. This study will benefit early warning and disaster risk reduction of downstream communities.</span></p>
Supplementary material 3 from: Mirza ZA, Bhardwaj VK, Patel H (2021) A new species of snake of the genus Oligodon Boie in Fitzinger, 1826 (Reptilia, Serpentes) from the Western Himalayas. Evolutionary Systematics 5(2): 335-345. https://doi.org/10.3897/evolsyst.5.72564
Figure S3. Paratype male of Oligodon churahensis sp. nov.
Supplementary material 2 from: Mirza ZA, Bhardwaj VK, Patel H (2021) A new species of snake of the genus Oligodon Boie in Fitzinger, 1826 (Reptilia, Serpentes) from the Western Himalayas. Evolutionary Systematics 5(2): 335-345. https://doi.org/10.3897/evolsyst.5.72564
Figure S2. Plate 38 of Russel (1796)
Supplementary material 1 from: Mirza ZA, Bhardwaj VK, Patel H (2021) A new species of snake of the genus Oligodon Boie in Fitzinger, 1826 (Reptilia, Serpentes) from the Western Himalayas. Evolutionary Systematics 5(2): 335-345. https://doi.org/10.3897/evolsyst.5.72564
Figure S1. Plate 35 of Russel (1796)
FIGURE 3 in Agrostis barikii (Poaceae: Agrostidinae), a new grass species from Western Himalaya, India
FIGURE 3. Geographic distribution of Agrostis barikii. (HP: Himachal Pradesh; UK: Uttarakhand).
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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)
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.