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Dataset results
431 results for “areas of endemism”
FIGURE 1 in A new endemic Impatiens species on Mount Gorongosa (Mozambique) demonstrates the conservation importance of montane areas in Africa
FIGURE 1. Photographs of Impatiens wuerstenii and its closest allies. A–F. Frontal view of flowers. A. I. wuerstenii; B. I. salpinx; C. I. cecilii; D. I. psychadelphoides; E. I. hydrogetonoides; F. I. zombensis. (Photo credits; A–D: Bart Würsten, E: Steven Dessein, F: Neil Crouch).
FIGURE 4 in A new endemic Impatiens species on Mount Gorongosa (Mozambique) demonstrates the conservation importance of montane areas in Africa
FIGURE 4. Maximum Likelihood phylogram based on combined ImpDEF1/ImpDEF2 and atpB-rbcL data. Numbers on branches represent Maximum Likelihood Bootstrap Support and Bayesian Posterior Probabilities, respectively.
FIGURE 3 in A new endemic Impatiens species on Mount Gorongosa (Mozambique) demonstrates the conservation importance of montane areas in Africa
FIGURE 3. Distribution of I. wuerstenii (black asterisks) on Mount Gorongosa. S. Afr.: South Africa; Zimb: Zimbabwe; Mal.: Malawi.
FIGURE 2. Impatiens wuerstenii. A in A new endemic Impatiens species on Mount Gorongosa (Mozambique) demonstrates the conservation importance of montane areas in Africa
FIGURE 2. Impatiens wuerstenii. A. Habit; B. Frontal view of flower; C. Dorsal petal; D. Lateral sepals; E. United lateral petals; F. Lower sepal and spur (Drawn by A. Fernandez from Ballings 1713)
FIGURE 1. Vriesea mimosoensis D.R in A new species of Vriesea (Bromeliaceae) from Pedra dos Pontões, Espírito Santo, Brazil: an area of endemism for Bromeliaceae at Atlantic Forest
FIGURE 1. Vriesea mimosoensis D.R.Couto, Kessous & A.F. Costa (D.R. Couto 3241 & F.C. Guerra-Júnior). A. Pedra dos Pontões, Mimoso do Sul, ES. B. Habitat, population inside of the cloud forest. C. Details of reproductive characteristics: floral bracts and flowers. D. Infrutescence. (Photo: D.R Couto)
FIGURE 2. Vriesea mimosoensis D.R in A new species of Vriesea (Bromeliaceae) from Pedra dos Pontões, Espírito Santo, Brazil: an area of endemism for Bromeliaceae at Atlantic Forest
FIGURE 2. Vriesea mimosoensis D.R.Couto, Kessous & A.F. Costa (D.R. Couto 3241 & F.C. Guerra-Júnior). A. Inflorescence. B. Infrutescence. C. Stigma. D. Pistil. E. Floral bract. F. Sepal. G. Petal and anthers. H. Petal appendages. I. Leaf. J. Habit.
Data from: Phylogeography of var gene repertoires reveals fine-scale geospatial clustering of Plasmodium falciparum populations in a highly endemic area
Plasmodium falciparum malaria is a major global health problem that is being targeted for progressive elimination. Knowledge of local disease transmission patterns in endemic countries is critical to these elimination efforts. To investigate fine-scale patterns of malaria transmission, we have compared repertoires of rapidly evolving var genes in a highly endemic area. A total of 3680 high quality DBLα sequences were obtained from 68 P. falciparum isolates from ten villages spread over two distinct catchment areas on the north coast of Papua New Guinea (PNG). Modeling of the extent of var gene diversity in the two parasite populations predicts more than twice as many var gene alleles circulating within each catchment (Mugil=906; Wosera=1094) than previously recognized in PNG (Amele=369). In addition, there were limited levels of var gene sharing between populations, consistent with local parasite population structure. Phylogeographic analyses demonstrate that while neutrally evolving microsatellite markers identified population structure only at the catchment level, var gene repertoires reveal further fine-scale geospatial clustering of parasite isolates. The clustering of parasite isolates by village in Mugil, but not in Wosera was consistent with the physical and cultural isolation of the human populations in the two catchments. The study highlights the micro-heterogeneity of P. falciparum transmission in highly endemic areas and demonstrates the potential of var genes as markers of local patterns of parasite population structure.
Figure 1 in Feeding habits of the endemic tropical parthenogenetic lizard Cnemidophorus nativo (Teiidae) in a restinga area of northeastern Brazil
Figure 1. Monthly number of isopterans and larvae in relation to total number of consumed prey by Cnemidophorus nativo in the restinga of Guaratiba, Prado, BA, Brazil. Lizard sample sizes for each month are given above the bars.
FIGURES 563–565 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 563–565. Geographical distributions of the Luridipennis, Rudallensis, and Trapezoidalis groups in Australia.
FIGURES 427–428. 427 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 427–428. 427. Collecting sites for the nine members of the impala species group, all in montane rain forest. 428. Collecting sites for the ten members of the pala species group, all in lowland rain forest.
FIGURES 429–430. 429 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 429–430. 429. Collecting sites of Limnebius acupunctus. 430. Collecting sites of the three species of Gymnochthebius known from Papua New Guinea.
FIGURES 421–422. 421. All known collecting localities for Papua New Guinea Hydraena. 422 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 421–422. 421. All known collecting localities for Papua New Guinea Hydraena. 422. Ten species, representing eight species groups, with distributions exclusively shared between Areas of Endemism 1 and 5.
FIGURE 420 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURE 420. Areas of Endemism (after Polhemus & Allen 2007), with number of endemics and total species of Hydraena in each Area.
FIGURES 423–424. 423 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 423–424. 423. Total species and number of shared species between selected montane and lowland collecting sites. 424. Total species (16) and shared species (2) between two sites horizontally separated by only 4.0 km, but vertically separated by 400 m.
FIGURES 346–351 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 346–351. Scanning electron micrographs of H. impercepta (346–348), H. jubilata (349–350) and H. lassulipes (351).
FIGURES 340–345 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 340–345. Scanning electron micrographs of H. bacchusi (340–341), H. variopaca (342) and H. cristatigena (343– 345).
FIGURES 316–321 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 316–321. Scanning electron micrographs of H. colorata (316–317) and H. paxillipes (318–321).
FIGURES 310–315 in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 310–315. Scanning electron micrographs of H. tricosipes (310–313) and H. tarsotricha (314–315).
FIGURES 180–181. Aedeagi. 180. H in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 180–181. Aedeagi. 180. H. impercepta, non-type specimen from Moitaka, 7 mi. N. of Port Moresby. 181. H. cavifrons, holotype.
FIGURES 160–161. Aedeagi. 160. H in New species (130) of the hyperdiverse aquatic beetle genus Hydraena Kugelann from Papua New Guinea, and a preliminary analysis of areas of endemism (Coleoptera: Hydraenidae) 2944
FIGURES 160–161. Aedeagi. 160. H. cristatigena, non-type specimen from E. Highlands, Wanatabe Valley, nr. Okapa. 161. H. variopaca, holotype.
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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.