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823 results for “southwestern China”
Fig. 5 in A new pachypleurosaur (Reptilia: Sauropterygia) from the Middle Triassic of southwestern China and its phylogenetic and biogeographic implications
Fig. 5 Right forelimb of Dianmeisaurus mutaensis sp. nov. (HFUT MT-21-08-001). A photo; B interpreted drawing. d, digit; eng, entepicondylar groove; h, humerus; r, radius; sc, scapula; u, ulna. Scale bars equal 1 mm
Figure 2 in A new leafhopper genus of Erythroneurini (Hemiptera, Cicadellidae, Typhlocybinae) from karst area in southwestern China
Figure 2 Anuihuajianga pyramidalis Zhang & Song gen. et sp. nov., male A) Genital capsule, lateral view B) Pygofer lobe, lateral view C) Anal tube with appendages, lateral view D) Dorsal pygofer process, lateral view E) Subgenital plate, lateral view F) Style, ventral view G) Aedeagus, ventral view H) Aedeagus, lateral view I) Connective, dorsal view J) Abdominal apodemes.
Figure 1 in A new leafhopper genus of Erythroneurini (Hemiptera, Cicadellidae, Typhlocybinae) from karst area in southwestern China
Figure 1 Anuihuajianga pyramidalis Zhang & Song gen. et sp. nov. A) Dorsal habitus B) Lateral habitus C) Head and thorax, dorsal view D) Face E) Forewing F) Hind wing.
Fig. 2 in New genotypes and molecular characterization of Enterocytozoon bieneusi in pet birds in Southwestern China
Fig. 2. Phylogenetic tree based on the internal transcribed spacer (ITS) sequences obtained in this study in relation to published sequences from GenBank using ML methods. Enterocytozoon bieneusi genotypes identified in the present study are indicated in bold-type, and genotypes PtEbIX (DQ85585) and CD8 (KJ668735) from dogs were used as outgroups.
Fig. 1 in New genotypes and molecular characterization of Enterocytozoon bieneusi in pet birds in Southwestern China
Fig. 1. Sequence variation in the ITS region of the rRNA gene of Enterocytozoon bieneusi isolates from pet birds. The ITS sequences of five known genotypes (D, SC02, BEB6, CHB1, and MJ5) and the three novel genotypes (SCB-I, SCB-II, and SCB-III), identified in this study, were aligned with each other.
Figures 13–14 in Two new Spilarctia Butler from Southwestern China (Lepidoptera: Erebidae: Arctiinae: Arctiini)
Figures 13–14. Spilarctia spp.: male (13) and female (14) genitalia. Depositories of the specimens dissected: 13 in ASV; 14 in WIGJ.
Figures 9–12 in Two new Spilarctia Butler from Southwestern China (Lepidoptera: Erebidae: Arctiinae: Arctiini)
Figures 9–12. Spilarctia spp.: male genitalia. Depositories of the specimens dissected: 9 and 11 in WIGJ; 10 and 12 in ASV.
Figures 1–8 in Two new Spilarctia Butler from Southwestern China (Lepidoptera: Erebidae: Arctiinae: Arctiini)
Figures 1–8. Spilarctia spp.: adults. Depositories of the specimens: 1, 2 and 5 in WIGJ; 3, 4, 6 and 7 in ASV; 8 in NHMUK (©The Trustees of NHMUK
Fig. 2 in First subtyping of Blastocystis sp. from pet rodents in southwestern China
Fig. 2. Phylogenetic relationships among nucleotide sequences of Blastocystis partial small subunit ribosomal RNA (SSU rRNA) genes. The neighbor-joining method was used to construct the trees from the Kimura-2- parameter model. Branch numbers represent percent bootstrapping values from 1000 replicates, with values of more than 50% shown in the tree. Each sequence is identified by its accession number, subtypes, host origin, and country. Blastocystis subtypes identified in the present study are indicated in bold-type.▲ are subtypes in this study.
Fig. 3 in Amphibian diversity and conservation along an elevational gradient on Mount Emei, southwestern China
Fig. 3. Local and overall elevational ranges for each amphibian species. For each species, the local elevational range is the maximum minus minimum elevation on Mount Emei (gray box or vertical line), and the overall elevational range size is the published elevational range covering the whole distribution range (the horizontal line).
Fig. 2 in Amphibian diversity and conservation along an elevational gradient on Mount Emei, southwestern China
Fig. 2. The numbers of total and threatened species (bars) and elevational patterns of species richness (curves). Regression lines show total species richness (black) and threatened species richness (red) based on the polynomial regression models, with threatened status counts referring to the IUCN Red List (A) and the China Biodiversity Red List (B).
Fig. 1 in Amphibian diversity and conservation along an elevational gradient on Mount Emei, southwestern China
Fig. 1. (A) Geographic location of Mount Emei; (B) topographic overview of sample sites; and dominant vegetation types and typical habitats along the elevational gradient at (C) 500 m, (D) 1,300 m, and (E) 3,050 m. Sampling sites are indicated with red stars (see Appendix 1 for details).
Fig. 21 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 21. Morphological comparison of saurichthyids with extant needlefish and flying fish. A. Sinosaurichthys longipectoralis. B. Sinosaurichthys longimedialis. C. Sinosaurichthys minuta. D. Saurichthys dawaziensis from Middle Triassic of Dawazi Section, Luoping, Yunnan, China (based on Wu et al. 2009). E. Atlantic needlefish Strongylura marina (Family Belonidae). F. Bluntnose flyingfish Prognichthys gibbifrons (Family Exocoetidae). E and F redrawed from images at http://www.fishbase.org/images/species that were originally from Cervigón et al. (1992).
Fig. 20 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 20. Saurichthyid fish Sinosaurichthys minuta gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. Photographs (A–D) and line drawings (E). A. Caudal fin (A1) and dorsal and anal fins (A2) of the holotype GMPKU−P1955. B. Mid−dorsal scale row just behind skull in dorsal view (B), mid−dorsal scale row in posterior abdominal region (B) (14th to 24th scales counted anteriorly from dorsal fin) of GMPKU−P1369. C. Skeleton 1 2 around pelvic fins of the paratype GMPKU−P1372. D. Skeleton around middle part of caudal peduncle of the paratype GMPKU−P1928. E. Idealized line drawings of dorsal scale row (dorsal view) near skull (E1) and around posterior abdominal region (E2), right mid−lateral scale row of abdominal region in lateral view (E3), and right ventrolateral scale row anterior to pelvic fins (E4). Anterior facing left in C, D and right in A, B, E.
Fig. 18 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 18. Line drawings of saurichthyid fish Sinosaurichthys minuta gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. A. Skull of the holotype GMPKU−P1955. B. Skull of the paratype GMPKU−P1370. C. Tentative restoration of skull in left lateral view (size referred from GMPKU−P1369). Anterior facing left in A, C and right in B.
Fig. 19 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 19. Line drawings of saurichthyid fish Sinosaurichthys minuta gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. A. Skull of the paratype GMPKU−P1372 (A1) and the scales around pelvic fins (A2). B. Skull of the paratype GMPKU−P1369 in left lateral view (B1) and its right posttemporal−supracleithrum (B2). C. Tentative restoration of skull in dorsal view (size referred from GMPKU−P1369). Anterior facing right in B2 and left in A, B1, C.
Fig. 17 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 17. Photographs of saurichthyid fish Sinosaurichthys minuta gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. A. Holotype GMPKU−P1955. B. Paratype GMPKU−P1372 (B1), teeth in squared region (B2). C. Paratype GMPKU−P1928. Anterior facing left.
Fig. 14 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 14. Line drawings of saurichthyid fish Sinosaurichthys longimedialis gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. A. Skull of GMPKU−P1367. B. Skull, paratype GMPKU−P1543. C. Tentative restoration of skull in left lateral view. Anterior facing right in A and left in B, C.
Fig. 15 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 15. Photographs of saurichthyid fish Sinosaurichthys longimedialis gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. A. Holotype GMPKU−P1927. Left pectoral fin (A1). Skeleton of posterior abdominal and caudal regions (A2). Magnification of squared region (A3) to show fringing fulcra in anal fin. B. Skeleton of posterior abdominal and caudal regions of GMPKU−P1388. Anterior facing left inA1 and right in A2, A3, B.
Fig. 13 in New saurichthyid actinopterygian fishes from the Anisian (Middle Triassic) of southwestern China
Fig. 13. Line drawings of skull of saurichthyid fish Sinosaurichthys longimedialis gen. et sp. nov. from Middle Triassic of Dawazi Section, Luoping, Yunnan, China. Paratype GMPKU−P1380. A. General view. B, C. Tentative restoration of skull in lateral (B) and dorsal (C) views; size referred from GMPKU−1954. Anterior facing left in A and right in B, C.
ScienceDex guides
Understand access before you commit
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.