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101 results for “Qinghai-Tibetan Plateau”
Phenotypic trait variation of Herminium monorchis in the Qinghai-Tibetan Plateau with grazing intensity and climatic conditions
This data set contains raw data supporting the research entitled “Livestock grazing outweighs climate in driving trait variation of a widespread alpine plant” (currently under peer review), which documents how phenotypic traits of a widespread herbaceous plant in the Qinghai-Tibetan Plateau, Herminium monorchis, vary with grazing intensity and environmental conditions.
Figures 1 in Biogeographical affinities and evolution of terrestrial fauna in the Qinghai-Tibetan Plateau and the Himalayas: a case study of Aphidomorpha
Figures 1. Generalized tracks and nodes based on the global distributions of aphid species in the QTPH. Generalized tracks are indicated by colored lines, and nodes are indicated with orange dots. A generalized track is a summary of replicated distribution patterns of different taxa (species); a node is a distribution area where two or more generalized tracks intersect. Generalized tracks and nodes together indicate biogeographical affinities between aphid faunas in the QTPH and other regions.
Figures 11–18 in Two new species of Eryciini (Diptera: Tachinidae) from the Eastern edge of the Qinghai-Tibetan Plateau, China
Figures 11–18. Lydella gannanensis sp. nov., male. 11–12. Body in dorsal and lateral views. 13–14. Head in anterior and lateral views. 15. Sternite 5. 16–17. Cerci, surstyli and epandrium in lateral and caudal views. 18. Bacilliform sclerite, ejaculatory apodeme, hypandrium, phallapodeme, pregonite, postgonite, basiphallus, distiphallus, epiphphallus, and acrophallus in lateral view. Scale bars: 11–14 = 1.0 mm, 15–18 = 0.2 mm.
Figures 1–8 in Two new species of Eryciini (Diptera: Tachinidae) from the Eastern edge of the Qinghai-Tibetan Plateau, China
Figures 1–8. Drino latifrons sp. nov., male. 1–2. Body in dorsal and lateral views. 3–4. Head in anterior and lateral views. 5. Sternite 5. 6. Bacilliform sclerite, ejaculatory apodeme, hypandrium, phallapodeme, pregonite, postgonite, basiphallus, distiphallus, epiphphallus, and acrophallus in lateral view. 7–8. Cerci, surstyli and epandrium in lateral and caudal views. Scale bars: 1–4 = 1.0 mm, 5–8 = 0.2 mm.
Fig. 2 in Description of a gynander of Colletes hedini (Hymenoptera: Colletidae) from the Qinghai-Tibetan Plateau, China: the first record of gynandromorphism for the genus after 30 years
Fig. 2. Meso- and metatibiae, anterior view, of the gynander of Colletes hedini. A – male-like tibia on the right side; B – female-like tibia on the left side. Scale bars – 1 mm.
Figure 2 in The first Fulgoridae (Hemiptera: Fulgoromorpha) from the Eocene of the central Qinghai-Tibetan Plateau
Figure 2. Fulgoridae gen. et sp. indet. (a) Imprint, specimen XZDY1-I-0031A. (b) Counterpart, specimen XZDY1-I-0031B. CuP, cubitus posterior; cv, crossveins; fg, female genitalia; h, head; hp, horseshoe pattern; hm, hind-wing margins; lpf, left profemur; mf, mesofemurs; ml, metalegs; ms, mesonotum; mt, metanotum; nl, nodal line; p, pronotum; rpf, right profemur; ta, tarsi; ti, tibia.
Figure 4 in The first Fulgoridae (Hemiptera: Fulgoromorpha) from the Eocene of the central Qinghai-Tibetan Plateau
Figure 4. Wings and genitalia. (a) Clavus. (b) Base part of the wings. (c) Nodal line and reticular veins of the hind wing. Red arrows trace the nodal line. (d) Crossveins. (e, f) Female genitalia of the part and the counterpart. A1, first anal vein; at, anal tube; bs, basal cell; CuA, cubital anterior; CuP, cubitus posterior; cv, crossveins; Gp, gonoplac; Gx, gonocoxa; Gy, gonapophysis; hm, hind-wing margin; MP, media posterior; mp, metapleuron; nl, nodal line; Pcu, postcubitus; R, radius; rv, reticular veins; ScP, subcosta posterior; te, tegula; tg, tergite. The specimen was immersed into alcohol in (b), (d), (e) and (f).
Figure 1 in The first Fulgoridae (Hemiptera: Fulgoromorpha) from the Eocene of the central Qinghai-Tibetan Plateau
Figure 1. Maps showing the location of the specimen. (a) Location of the Lunpola Basin within the Tibetan Plateau terranes. BNS, Bangong– Nujiang suture; JS, Jinshajiang suture; YZS, Yalu–Zangbo suture. Map data provided by SRTM data V4 (Jarvis et al., 2008). (b) Schematic lithologic log of the Dayu section showing stratigraphic positions of radiogenic dating samples and Fulgoridae fossil of the Niubao Formation. Modified from Fang et al. (2020). (c) The specimen was collected from fossil sites DY1 in Lunpola Basin.
Figure 3 in The first Fulgoridae (Hemiptera: Fulgoromorpha) from the Eocene of the central Qinghai-Tibetan Plateau
Figure 3. Head, thorax, and legs. (a) Thorax of the part and the counterpart. (b) Preserved part of the head. (c) Prolegs. (d) Metalegs. (e, f) Tarsi of the metalegs. (g) Metatibia of the counterpart. (h) Show the spine in (g). amm, anterior margin of mesonotum; as, apical spines; c, carinae; cl, claw; ls, lateral spines; lt, lateral teeth; mt, median teeth; p, pronotum; pf, profemurs; s, scape; sc, scutellum; te, tegula; ts, tarsomere; v, vertex; w, wrinkles. The specimen was immersed into alcohol except in (a).
Fig. 5 in Phylogeography of (Nemacheilidae): Responded to the Mid-Pleistocene Climate Transition in the Qinghai-Tibetan Plateau.
Fig. 5. Bayesian Skyline Plot (BSP) of the Tibetan stone loaches, T. stenura based on mtDNA (COI, Cyt b). The maximum time is set to the upper 95% HPD of the root height. The median estimate (solid line) and 95% HPD limits (Color area) are indicated. (a) Yangtze River populations (clade 4); (b) Subansiri River population (clade 3); (c) Nu River populations (clade 2); (d) the southwestern and central QTP populations (clade 1).
Fig. 3 in Phylogeography of (Nemacheilidae): Responded to the Mid-Pleistocene Climate Transition in the Qinghai-Tibetan Plateau.
Fig. 3. Bayesian estimates of divergence time for the lineages of T. stenura based on the mitochondrial genes (COI, Cyt b) data set. Dusty purple bars represent 95% highest posterior density for divergence estimates. The numbers on the nodes are million years ago (Mya).
Fig. 2 in Phylogeography of (Nemacheilidae): Responded to the Mid-Pleistocene Climate Transition in the Qinghai-Tibetan Plateau.
Fig. 2. ML tree for T. stenura on QTP and in its adjacent drainages based on a combination of genes including two mitochondrial genes (COI, Cyt b) and recombination activating protein 1 gene (Rag1-701 bp). Clade credibility values of major lineages are given for nodes with bootstrap support for ML (above branch) and posterior probability for Bayesian inferences (below branch). Major clades referred to in the text are listed to the right. Different colors were assigned for each clade: Clade 1, green; Clade 2, red; Clade 3, black; Clade 4, blue; Outgroups, black.
Fig. 4 in Phylogeography of (Nemacheilidae): Responded to the Mid-Pleistocene Climate Transition in the Qinghai-Tibetan Plateau.
Fig. 4. TCS network generated by Popart based on cytochrome b haplotypes for the T. stenura in QTP. Numbers in the networks represent haplotype designations and the areas of the circles are proportional to haplotype frequency; Black dots represent missing intermediate haplotypes.
Fig. 1 in Phylogeography of (Nemacheilidae): Responded to the Mid-Pleistocene Climate Transition in the Qinghai-Tibetan Plateau.
Fig. 1. Map of the study area and geographical distribution of sampling sites in this study. The sites are numbered according to table 1.
Fig. 1 in First report on the molecular detection of Enterocytozoon bieneusi in livestock and wildlife around Qinghai Lake in the Qinghai-Tibetan Plateau area, China
Fig. 1. Phylogenetic tree of E. bieneusi isolates and reference based on ITS region sequence of small-subunit ribosomal RNA (SSU rRNA) genes.
Figure 8 in A new species of Gammarus Fabricius, 1775 (Crustacea: Amphipoda: Gammaridae) from extreme high-altitude Lake Tong Tso, Qinghai-Tibetan Plateau
Figure 8. Gammarus pontual sp. nov., male paratype (MZUSP 40977): (A-C) Pleopods 1-3, dorsal view, respectively. Scale bars: 1.0 mm.
Figure 7 in A new species of Gammarus Fabricius, 1775 (Crustacea: Amphipoda: Gammaridae) from extreme high-altitude Lake Tong Tso, Qinghai-Tibetan Plateau
Figure 7. Gammarus pontual sp. nov., male holotype (MZUSP 40976): (A-C) Epimeral plates 1-3, lateral view, respectively. Male paratype (MZUSP 40977): (D-F) Uropods 1-3, lateral view, respectively; (G) Telson, dorsal view. Scale bars: 0.5 mm for G; 2.0 mm for A-C; 1.0 mm for the remaining.
Figure 4 in A new species of Gammarus Fabricius, 1775 (Crustacea: Amphipoda: Gammaridae) from extreme high-altitude Lake Tong Tso, Qinghai-Tibetan Plateau
Figure 4. Gammarus pontual sp. nov., male paratype (MZUSP 40977): (A) Right gnathopod 1, lateral view; (B) Left gnathopod 1, mesial view. Scale bars: 1.0 mm.
Figure 1 in A new species of Gammarus Fabricius, 1775 (Crustacea: Amphipoda: Gammaridae) from extreme high-altitude Lake Tong Tso, Qinghai-Tibetan Plateau
Figure 1. Gammarus pontual sp. nov., male holotype (MZUSP 40976): (A) Habitus, lateral view; (B-D) Urosomites 1-3, dorsal view, respectively. Scale bars: 10.0 mm for A; 2.0 mm for B-D.
Figure 3 in A new species of Gammarus Fabricius, 1775 (Crustacea: Amphipoda: Gammaridae) from extreme high-altitude Lake Tong Tso, Qinghai-Tibetan Plateau
Figure 3. Gammarus pontual sp. nov., male paratype (MZUSP 40977): (A) Left maxilla 1, dorsal view; (B) Detail of the right palp of maxilla 1, dorsal view; (C) Left maxilla 2, dorsal view; (D) Left maxilliped, dorsal view. Scale bars: 0.1 mm for B; 1.0 mm for D; 0.5 mm for the remaining.
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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.