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496 results for “Tibetan Plateau”
Evolutionary history of zoogeographical regions surrounding the Tibetan Plateau
<p>The Tibetan Plateau (TP) and surrounding regions have one of the most complex biotas on Earth. However, the evolutionary history of these regions in deep time is poorly understood. In this study, we quantified the temporal changes in beta dissimilarities among zoogeographical regions during the Cenozoic using 4,966 extant terrestrial vertebrates and 1,278 extinct mammal genera. We identified ten present-day zoogeographical regions and found that they underwent a striking change over time. Specifically, the fauna on the TP was close to the Oriental realm in deep time, while it became more similar to the Palearctic realms towards the present day. The present-day zoogeographical regions generally emerged during the Miocene/Pliocene boundary (<i>ca</i>. 5 Ma). These results indicate that geological events such as the Indo-Asian Collision, the TP uplift, and the aridification of the Asian interior underpinned the evolutionary history of the zoogeographical regions surrounding the TP over different time periods.</p>
Supporting_information_of_Evalution of the High-degree Gravity Model at the Eastern Margin of Tibetan Plateau
<p>dataset for the paper "Evalution of the High-degree Gravity Model at the Eastern Margin of Tibetan Plateau"</p>
Multiple-scale negative impacts of warming on ecosystem carbon use efficiency across the Tibetan Plateau grasslands
<div> <p><strong>Aim:</strong> Ecosystem carbon use efficiency (CUEe) is a core parameter of ecosystem process models, but its relationships with climate are still uncertain, especially for ecosystems with harsh environments. High inconsistencies in climate impacts on the CUEe have been reported among various spatial scales. The goal of this study was to examine whether warming promotes or restricts the CUEe and whether the CUEe responds to a warming gradient in a linear or nonlinear manner.</p> <p><strong>Location:</strong> Tibetan Plateau.</p> <p><strong>Time period:</strong> 2000-2018.</p> <p><strong>Major taxa studied: </strong>Alpine grassland ecosystem.</p> <p><strong>Methods: </strong>We integrated multiple-source data of carbon fluxes and CUEe, including warming experiments at a site scale, eddy covariance observations at a landscape scale and synthesized warming experiments and ecosystem process models at a regional scale. Next, we deployed a statistical model to examine the warming impacts on the CUEe across scales; the effects of biotic and abiotic factors on the CUEe and its components were summarized based on the results of Standardized Major Axis Tests and Routines, structural equation modeling and nonlinear models.</p> <p><strong>Results: </strong>This study reported a suppressive warming impact on the CUEe, which followed a nonlinear curve with severe inhibition in the high-level warming treatment. With a warming threshold of 1.5-2.0 °C, CUEe response patterns transitioned from no change to a significant decrease. The restriction effects can be ascribed to the joint adverse and asymmetric effects of warming on CUEe components under multiple-level warming. Warming-modified relationships among CUEe components and the nonlinear effects of biotic and abiotic factors led to the nonlinear responses of CUEe to warming.</p> <p><strong>Main conclusions: </strong>This study revealed suppressive and nonlinear effects of warming on the CUEe, including especially dramatic CUEe decreases with high-level warming. These findings are critical for optimizing model parameters and improving predictions of the carbon sequestration capacity of alpine grasslands.</p> </div>
FIGURE 1 in DNA barcodes and morphology reveal two new species of Monodiamesa Kieffer (Diptera: Chironomidae: Prodiamesinae) in Tibetan Plateau
FIGURE 1. Distribution of sampling sites.
The protracted role of India-Eurasia collision in the uplift of the Tibetan plateau revealed by Machining Learning
Open the record for dataset details and reuse information.
Gridded runoff and evapotranspiration dataset for seven major river basins of the Tibetan Plateau during 1998-2017
<p>This data set describes the spatiotemporal distribution of runoff and evapotranspiration for the headwater of seven river basins (the Yellow, Yangtze, Mekong, Salween, Brahmaputra, Ganges, and Indus) in the Tibetan Plateau. This was achieved using an observation-constrained distributed cryosphere-hydrology model, known as the WEB-DHM. The time range is 1998-2017 at a monthly scale, the spatial resolution is 5km×5km, and the unit is mm/month. </p><p>For the convenience of users, this data is stored in TIF format, with each combination of different watersheds forming a separate file. Each file contains two variable: either runoff or evapotranspiration. These files can be opened with ArcGIS, Python, R, and other tools.</p>
H-κ-c results in central-southern Tibetan Plateau and receiver functions from GANSSER, Butan Pilot Array, and 5 INDEPTH IV stations
Open the record for dataset details and reuse information.
The Harmonized Atmospheric Ozone Column Concentration Dataset from 2005 to 2022 with OMI and Sentinel-5P TROPOMI products on the Tibetan Plateau
Open the record for dataset details and reuse information.
Figure 7 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 7 Pupa of Gnaptorina (Gnaptorina) lhorongica Li, sp. nov. A–C habitus A dorsal view B ventral view C lateral view D lateral process of abdominal terga, in dorsal view E urogomphy, in dorsal view. Scale bars: 2 mm (A–C); 1 mm (D, E).
Figure 3 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 3 Gnaptorina (Gnaptorina) lhorongica Li, sp. nov. A–C male, holotype D–F female, paratype A, D dorsal view B, E lateral view C, F ventral view. Scale bars: 2.0 mm.
Figure 6 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 6 Larva of Gnaptorina (Gnaptorina) lhorongica Li, sp. nov. A head B labrum and clypeus, in dorsal view C labium D legs. Scale bars: 1 mm (A, B, D); 0.5 mm (C).
Figure 8 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 8 Maximum-likelihood phylogenetic tree based on 2321 bp of mitochondrial and nuclear DNA sequences (COI, Cytb, 16S, and 28S-D2) within the genus Gnaptorina. Support for each node is represented by ultrafast bootstrap values (uBV).
Supplementary material 1 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
List of specimens used in this study with the corresponding accession number
Figure 5 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 5 Larva of Gnaptorina (Gnaptorina) lhorongica Li, sp. nov. A–C habitus A dorsal view B ventral view C lateral view D head, dorsal view E head, fore foot, and mesoleg, in ventral view F pygopods, in dorsal view G pygopods, in ventral view. Scale bars: 2 mm (A–C); 1 mm (D–G).
Figure 4 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 4 Gnaptorina (Gnaptorina) dongdashanensis Shi, 2013 A–C male D–F female A, D dorsal view B, E lateral view C, F ventral view. Scale bars: 2.0 mm.
Figure 2 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 2 Gnaptorina (Gnaptorina) dongdashanensis Shi, 2013 A head, dorsal view B head, ventral view C pronotum D antenna E protibia F mesotibia G metatibia H protarsus I mesotarsus J metatarsus K aedeagus, dorsal view L aedeagus, lateral view M aedeagus, ventral view. Scale bars: 1.0 mm (A–C); 0.5 mm (D–M).
Figure 1 from: Ji B-Y, Ma X-T, Rong J-D, Ren G-D, Pan Z, Li X-M (2024) The adult, pupa, and larva of a new species of Gnaptorina Reitter, 1887 (Coleoptera, Tenebrionidae, Blaptini) from the Tibetan Plateau, with molecular phylogenetic inferences. ZooKeys 1190: 91-106. https://doi.org/10.3897/zookeys.1190.113126
Figure 1 Gnaptorina (Gnaptorina) lhorongica Li, sp. nov. Holotype A head, dorsal view B head, ventral view C pronotum D antenna E protibia F mesotibia G metatibia H protarsus I mesotarsus J metatarsus K aedeagus, dorsal view L aedeagus, lateral view M aedeagus, ventral view. Scale bars: 1.0 mm (A–C, K–M); 0.5 mm (D–J).
Figure 3 from: Xu R-J, Li J-F, Zhou D-Q, Boonmee S, Zhao Q, Chen Y-Y (2024) Three novel species of Aquapteridospora (Distoseptisporales, Aquapteridosporaceae) from freshwater habitats in Tibetan Plateau, China. MycoKeys 102: 183-200. https://doi.org/10.3897/mycokeys.102.112905
Figure 3 Aquapteridospora yadongensis (HKAS 128992, holotype) a colonies on the substratum b, c conidiophore and conidiogenous cell d-g conidiogenous cells with developmental conidia h–k conidia l germinating conidium m culture on PDA. Scale bars: 100 μm (b, c); 20 μm (d, g); 10 μm (h–l).
Figure 1 from: Xu R-J, Li J-F, Zhou D-Q, Boonmee S, Zhao Q, Chen Y-Y (2024) Three novel species of Aquapteridospora (Distoseptisporales, Aquapteridosporaceae) from freshwater habitats in Tibetan Plateau, China. MycoKeys 102: 183-200. https://doi.org/10.3897/mycokeys.102.112905
Figure 1 Maximum likelihood (ML) tree is based on combined LSU, TEF1-α and ITS sequence data. ML bootstrap support values equal to or greater than 70% and Bayesian posterior probabilities (PP) equal to or greater than 0.95 given above the nodes, shown as "ML/PP". The tree is rooted with Pseudostanjehughesia aquitropica (MFLUCC 16-0569) and P. lignicola (MFLUCC 15-0352). New species are indicated in red and type strains are in bold.
Figure 2 from: Xu R-J, Li J-F, Zhou D-Q, Boonmee S, Zhao Q, Chen Y-Y (2024) Three novel species of Aquapteridospora (Distoseptisporales, Aquapteridosporaceae) from freshwater habitats in Tibetan Plateau, China. MycoKeys 102: 183-200. https://doi.org/10.3897/mycokeys.102.112905
Figure 2 Aquapteridospora linzhiensis (HKAS 128991, holotype) a colonies on the substratum b–e conidiophores, conidiogenous cells with conidia f, g conidiogenous cells with developmental conidia h–k conidia l, m culture on PDA. Scale bars: 50 μm (b–e); 20 μm (f, g); 10 μm (h–k).
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.