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2,256 results for “Southern China”
FIGURES 5–12 in Two new species of Plagiostriata (Bacillariophyaceae) from sand sediments of southern China
FIGURES 5–12. Plagiostriata xiapuensis sp. nov from type material, SEM. 5–7. External views of the valve with a rimoportula (arrow). 8. Apical fields of the external valve. 9. Central area of a valve with no rimoportula. 10. Apical fields of the internal valve. Areolae round, occluded by simple vola (arrows). 11, 12. Internal views of the valve with a rimoportula (arrow). Scale bars = 1 μm (Figs. 5–7, 9, 11, 12), 0.2 μm (Figs. 8, 10).
FIGURES 1–4 in Two new species of Plagiostriata (Bacillariophyaceae) from sand sediments of southern China
FIGURES 1–4. LM micrographs of Plagiostriata xiapuensis sp. nov. from type material. Fig. 1 corresponds to the holotype. Scale bars = 10 μm.
FIGURE 3 in A new species of Xenasmatella (Polyporales, Basidiomycota) from southern China
FIGURE 3. Microscopic structures of Xenasmatella roseobubalina (Holotype, Dai 20506). a Basidiospores; b Basidia; c Basidioles; d Hyphae from subhymenium and crystals (black arrow) among hyphae. Drawings by: Zhan-Bo Liu.
FIGURE 2 in A new species of Xenasmatella (Polyporales, Basidiomycota) from southern China
FIGURE 2. Basidiomata of Xenasmatella roseobubalina (Holotype, Dai 20506). Scale bar = 1.0 cm. Photo by: Yu-Cheng Dai.
FIGURE 1 in A new species of Xenasmatella (Polyporales, Basidiomycota) from southern China
FIGURE 1. Phylogeny of Xenasmatella and related species by ML analysis based on ITS rDNA sequences. Branches are labelled with Maximum Likelihood bootstrap> 65 %, parsimony bootstrap proportions> 50 %, and Bayesian Posterior Probabilities> 0.90, respectively. New species is in bold.
FIGURE 19–20 in Contribution to the knowledge of the genus Ovipennis Hampson, 1900 with descriptions of two new species from Southern and Southwestern China (Lepidoptera, Erebidae, Arctiinae, Lithosiini)
FIGURE 19–20. Female genitalia of Ovipennis milani. Depositories of the slides: 19 in CKC; 20 in NEFU.
FIGURE 16–18 in Contribution to the knowledge of the genus Ovipennis Hampson, 1900 with descriptions of two new species from Southern and Southwestern China (Lepidoptera, Erebidae, Arctiinae, Lithosiini)
FIGURE 16–18. Male genitalia of Ovipennis spp. Depositories of the slides: 16 in SCAU; 17, 18 in NHMUK (©The Trustees of NHMUK).
FIGURE 1 in Contribution to the knowledge of the genus Ovipennis Hampson, 1900 with descriptions of two new species from Southern and Southwestern China (Lepidoptera, Erebidae, Arctiinae, Lithosiini)
FIGURE 1. Molecular phylogenetic tree recovered from the Maximum likelihood inference analysis of the combined dataset with the best-fit partitioning strategy. The clades were mostly folded except for the genus Ovipennis. The branch of the species Nanarsine milani was marked out by red. The order of the values on the nodes is as follows: ultrafast bootstrap values (UFBS) in IQtree / posterior probabilities (PP) of the Bayesian analysis.
FIGURE 12–15 in Contribution to the knowledge of the genus Ovipennis Hampson, 1900 with descriptions of two new species from Southern and Southwestern China (Lepidoptera, Erebidae, Arctiinae, Lithosiini)
FIGURE 12–15. Male genitalia of Ovipennis spp. Depositories of the slides: 12 in MWM/ZSM; 13–15 in NEFU.
FIGURE 2–11 in Contribution to the knowledge of the genus Ovipennis Hampson, 1900 with descriptions of two new species from Southern and Southwestern China (Lepidoptera, Erebidae, Arctiinae, Lithosiini)
FIGURE 2–11. Adults of Ovipennis spp. Depositories of the specimens: 2, 11 in NHMUK (©The Trustees of NHMUK); 3 in CKC; 4–8 in NEFU; 9, 10 in SCAU.
SSR data of Plutella xylostella samples collected from Southern China and Southeast Asia
<p>Genetic makeup of insect pest is informative for source-sink dynamics, spreading of resistant genes, and effective management. However, collecting samples from geographical populations without considering temporal resolution and calculating parameters related to historical gene flow may not capture contemporary genetic pattern and metapopulation dynamics of highly dispersive pests. <em>Plutella xylostella</em> (L.), the most widely distributed Lepidopteran pest that developed resistance to almost all current insecticides, migrates heterogeneously across space and time. To investigate its real-time genetic pattern and dynamics, we executed four samplings over two consecutive years across Southern China and Southeast Asia, and constructed population network based on contemporary gene flow. Across 48 populations, genetic structure analysis identified two differentiated insect swarms, of which the one with higher genetic variation was replaced by the other over time. We further inferred gene flow by estimation of kinship relationship and constructed migration network in each sampling time. Interestingly, we found mean migration distance at around 1000 km. Such distance might have contributed to the formation of step-stone migration and migration circuit over large geographical scale. Probing network clustering across sampling times, we found a dynamic metapopulation of <em>P. xylostella</em> with more active migration in spring than in winter, and identified some regions are consistent sources (e.g., Yunnan in China, Myanmar and Vietnam) while several others are persistent sinks (e.g., Guangdong and Fujian in China) in its overwintering regions. Rapid turnover of insect swarms and highly dynamic metapopulation highlight the importance of temporal sampling and network analysis in investigation of source-sink relationships and thus effective pest management.</p>
FIGURE 6 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 6. Macrohabitat (A) and microhabitat (B) of Raorchestes yadongensis sp. nov. from type locality in Yadong County, Xizang, China.
FIGURE 5 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 5. Paratype of Raorchestes yadongensis sp. nov. (YBU 21222) showing dorsal (A) and ventral (B) views of body; hand (C) and foot (D).
FIGURE 2 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 2. Phylogeny of Raorchestes based on mitochondrial 16S rRNA and ND1 genes. Nodal support values with Bayesian posterior probability (BPP) and ML inferences bootstrap support (BS) are shown near respective nodes. Symbol "-" denotes BPP <90% or BS <70.
FIGURE 4 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 4. Holotype of Raorchestes yadongensis sp. nov. (YBU 21223) showing dorsal (A) and ventral (B) views of body; ventral view of hand (C); ventral view of foot (D).
FIGURE 3 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 3. Lateral (A), dorsal (B), and ventral (C) views of holotype of Raorchestes dulongensis sp. nov. (YBU 21223) in life.
FIGURE 1 in A new species of bush frog (Anura, Rhacophoridae, Raorchestes) from southern Xizang, China
FIGURE 1. Map showing type locality of Raorchestes yadongensis sp. nov. in Yadong County, Xizang, China
FIGURE 1 in Cobitis xui, a new species of spined loach (Teleostei: Cobitidae) from the Pearl River drainage in southern China
FIGURE 1. Notatons of lines and speckles (L1–L5 named as Gambetta pigment pattern in this study correspondence to Z1–Z4 in Gambetta (1934)) applied to typeical dorsolateral pattern of anterior trunk of Cobitis xui sp. nov.
FIGURE 4 in Cobitis xui, a new species of spined loach (Teleostei: Cobitidae) from the Pearl River drainage in southern China
FIGURE 4. Head ventral and laterla views of Cobitis xui sp. nov., GTEU 201705002, paratype, female, 75.1 mm SL, China: Guangxi, Rong'an County, Buquan Town, Buquan River, Youjiang basin.
FIGURE 8 in Cobitis xui, a new species of spined loach (Teleostei: Cobitidae) from the Pearl River drainage in southern China
FIGURE 8. Maximum likelihood tree of Cytb lineages of Cobitis and four lineages of Iksookimia. Sabanejewia balcanica were used as outgroups. Numbers on the internode branches are bootstrap percentages for the ML analysis.
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.