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Fig. 9 in Captive individuals of endangered Philippine raptors maintain native feather mites (Acariformes: Pterolichoidea) species
Fig. 9. Pseudogabucinia nisaeti sp. n. details. A – opisthosoma of male, ventral view, B–D – genu, tibia and tarsus I–III of male, respectively, dorsal view, E – tibia and tarsus IV of male, F, G – tibia and tarsus III and IV of female, respectively, G – tibia and tarsus IV of female, H – spermatheca and spermaducts.
Fig. 10 in Captive individuals of endangered Philippine raptors maintain native feather mites (Acariformes: Pterolichoidea) species
Fig. 10. Phylogenetic tree of EF1 sequences from pterolichoid feather mites available in GenBank (black) with feather mites from Philippine raptors studied (red); tree topology was reconstructed in the RaxML program. Values of the statistical support (are given above the branches if they exceed 65%) were computed by following methods: Mr. Bayes/ML (by RaxML) and NJ (by Mega6). ABGD and GMYC marks represent significant nodes (p <0.05). (For interpretation of the references to colour in this figure legend, the reader is referred to the Web version of this article.)
Fig. 1 in SHORT COMMUNICATION New records of the Critically Endangered frog Pristimantis pardalinus (Craugastoridae) in the eastern Andean slopes of central Peru
Fig. 1. Map showing the currently known distribution of Pristimantis pardalinus. The yellow triangle indicates the location of the type locality and the red stars indicate the location of new records reported in this study. The inset shows the location of the study area in Peru (red box).
Fig. 2 in Genetic diversity and population structure of endangered Neofinetia falcata (Orchidaceae) in South Korea based on microsatellite analysis
Fig. 2. Structure analyses for putative genetic clusters of N. falcata. A: Graphs of ΔK values to determine the ideal number of groups present in the accessions of N. falcata. B: Estimated genetic structure of the 3 populations of brinjal based on STRUCTURE analysis K = 2 and K = 3.
Fig. 3 in Plastid genome of Aster altaicus var. uchiyamae Kitam., an endanger species of Korean asterids
Fig. 3. Comparison of chloroplast genomes of Aster altaicus var. uchiyamae and A. spathulifolius using mVISTA program. Grey arrows and thick black lines above the alignment indicate genes with their orientation and the position of the IRs, respectively. The Y-scale represents the percent identity between 50-100%. Genome regions are color-coded: Coding regions in blue; noncoding sequences (CNS) in red.
Data accompanying "Genomic data recover previously undetectable fragmentation effects in an endangered amphibian"
<p>Target sequences and SNP and genotype calls from the manuscript "Genomic data recover previously undetectable fragmentation effects in an endangered amphibian".</p>
Figure 3 in Diet and habitat use of the endangered Persian leopard (Panthera pardus saxicolor) in northeastern Iran*
Figure 3. Leopard distribution map (based on direct observation, scat, track, and prey carcass locations) and habitat overlap of the leopard with wild pig (Sus scrofa), porcupine (Hystrix indica), wild goat (Capra aegagrus), wild sheep (Ovis orientalis), and pika (Ochotona rufescens) in SNP.
Figure 1 in Eupelmus niger (Hymenoptera: Eupelmidae), a Parasitoid of the Endangered Hawaiian Yellow-faced Bee Hylaeus anthracinus (Hymenoptera: Colletidae)
Figure 1. Design of artificial nest block that yielded E. niger individuals: A, example nest block in coastal strand habitat; B, close-up of dowels that serve as nesting sites (top right and lower middle dowels bear cellophane seals indicative of Hylaeus nests); C, dowel split after bee emergence, showing two previously occupied cells with fecal remains at bottom of each, plus one vestibular cell above.
Figure 4 in Eupelmus niger (Hymenoptera: Eupelmidae), a Parasitoid of the Endangered Hawaiian Yellow-faced Bee Hylaeus anthracinus (Hymenoptera: Colletidae)
Figure 4. Eupelmus niger ♂ reared from Hylaeus anthracinus. A, dorsal habitus; B, lateral habitus; C, frontal head; D, dorsal head; E, lower face; F, antenna.
Figure 6. A, female E in Eupelmus niger (Hymenoptera: Eupelmidae), a Parasitoid of the Endangered Hawaiian Yellow-faced Bee Hylaeus anthracinus (Hymenoptera: Colletidae)
Figure 6. A, female E. niger antennating dowel while searching for Hylaeus hosts (note cellophane seal at end of dowel indicating the presence of a Hylaeus nest). B, female E. niger inserting ovipositor into same dowel.
Fig. 7 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 7. Mean trypanosome prevalence over time (with 95% CI) in translocated and resident woylies within Dryandra. TRAN: time of translocation.
Fig. 6 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 6. Non-metric multidimensional scaling plots showing convergence of parasite community composition in translocated (TYPE T) and resident (TYPE R) woylie groups following translocation. Boxes on the left depict both groups at all time points prior to and including the point of translocation; boxes on the right depict both groups six months after translocation.
Fig. 5 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 5. Overall parasite infracommunity richness in (A) translocated and (B) resident woylies over time. TRAN: time of translocation; Error bars represent one standard error.
Fig. 2 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 2. The overall effect of site on mean faecal egg counts (above solid line) and parasite prevalence (below solid horizontal line) for each parasite taxon in (A) translocated and (B) resident woylies. Error bars represent 95% CI.
Fig. 3 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 3. The effect of time since translocation (model coefficients for all sites combined) on mean faecal egg counts (above solid horizontal line) and parasite prevalence (below solid horizontal line) for each parasite taxon in translocated and resident woylies. Left of the dashed vertical line indicates a negative effect, right of the line indicates a positive effect; Error bars represent 95% CI.
Fig. 4 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 4. Significant changes to mean strongyle egg counts (A) and flea prevalence (B) over time. TRAN: time of translocation; Boxplots (A) are delimited by the first (lower) and third (upper) quartile with the median represented by the thick horizontal line; whiskers represent the 1.5 interquartile range; solid black dots represent outliers; Error bars (B) represent 95% CI.
Fig. 1 in Altered parasite community structure in an endangered marsupial following translocation
Fig. 1. Map (from Northover et al., 2019) illustrating the study sites within south-western Australia, including Walcott and Warrup East in relation to Perup Sanctuary (box, right), and Dryandra, situated roughly 250 km north-east of the Upper Warren region.
Fig. 2 in First reports of nasal and traumatic myiasis infection in endangered Przewalski's horses (Equus ferus przewalskii)
Fig. 2. Photographs of the third larval stage of Rhinoestrus purpureus-like collected from Przewalski's horse in the Kalamaili Nature Reserve, Xinjiang, China. A. Ventral view. (Scale bar: 3 mm.) B. Ventral view of the anterior part. (Scale bar: 1 mm.) C. Dorsal view. (Scale bar: 3 mm.) Box showing the opening of the spines. (Scar bar: 0.25 mm.) D. Posterior view. (Scale bar: 1 mm.)
Figure 1 in 'Endangered' or 'Near Threatened', distribution status of Karaavali Skittering frog from the west coast of peninsular India
Figure 1. Map showing the distribution range of E. karaavali in the west coast of India (red star, type locality; red circle, other collection localities by Priti et al. (2016); blue circle, genetically identified by Anoop et al. (2017); orange circle, genetically confirmed sample in the present study; yellow circle, museum collection localities in the present study).
Figure. The left-hand photo shows the Basra Reed-warbler (Acrocephalus griseldis) caught at Aras River Ornithological Research Station. The right-hand photo compares A. griseldis (left) with a Great Reed-warbler (A. arundinaceus, right). in Endangered Basra Reed-warbler (Acrocephalus griseldis) recorded for the first time in Turkey (Aves: Acrocephalidae)
Figure. The left-hand photo shows the Basra Reed-warbler (Acrocephalus griseldis) caught at Aras River Ornithological Research Station. The right-hand photo compares A. griseldis (left) with a Great Reed-warbler (A. arundinaceus, right).
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.