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Fig. 1 in Genetic diversity and population structure of endangered Neofinetia falcata (Orchidaceae) in South Korea based on microsatellite analysis
Fig. 1. Geographic distribution of N. falcata populations. Abbreviations are shown in Table 1. Pie charts represent assignment probability of belonging to each K = 2 clusters identified by STRUCTURE based on microsatellite allele frequencies, with probability values normalized using CLUMPP.
Figures 5-6 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figures 5-6 Small mammal community structure in CFMA and Pau da Fome, Rio de Janeiro, Brazil, for the (5) 2001 and (6) 2012–2015 samplings. (A, B, C, D, E, F, G, H, K, L) CFMA transects, (C1, D1, E1, F1, G1) Pau da Fome transects.
Figures 2-4 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figures 2-4 Plots of the Non-metric Multidimensional Scaling Analysis between the two periods and areas studied (● CFMA and Pau da Fome) for the small mammal species: (2) comparison between 2001 and 2012-2015 samplings including all transects pulled; (3) comparison among transects in 2001 (transects from A to D in disturbed forests and from E to H in peridomicile areas of CFMA; transects from C1 to G1 in disturbed forest of Pau da Fome); (4) comparison among transects for the 2012-2015 period (transects A, B, K, L in disturbed forest areas of CFMA; E1 in disturbed forest areas of Pau da Fome; C, D in peridomicile areas of CFMA; C1 and D1 in peridomicile areas of Pau da Fome; E and F in preserved forest areas of CFMA).
Figure 7 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figure 7 Canonical correspondence analysis (CCA) and relationship among species, transects (A, B, C, D, E, F) and habitat variables (CANO – percentage of canopy cover; TREE – number of trees with diameter at breast height ≥ 5; VCS – percentage of vegetation cover on the soil; VVO – vertical vegetation obstruction) for the 2012–2015 period in CFMA, Rio de Janeiro, Brazil.
Figure 9 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figure 9 Age structure of the marsupial Didelphis aurita for the 2012–2015 period in CFMA and Pau da Fome, Rio de Janeiro, Brazil.
Figure 1 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figure 1 Map of the study area indicating the sampling localities in CFMA and Pau da Fome region, State of Rio de Janeiro, Brazil. 1) CFMA – Peridomicile, 2–3) CFMA – Disturbed Forest, 4) CFMA – Preserved Forest, 5) Pau da Fome – Peridomicile, 6) Pau da Fome – Disturbed Forest.
Figure 8 from: Gentile R, Cardoso TS, Costa-Neto SF, Teixeira BR, D'Andrea PS (2018) Community structure and population dynamics of small mammals in an urban-sylvatic interface area in Rio de Janeiro, Brazil. Zoologia 35: 1-12. https://doi.org/10.3897/zoologia.35.e13465
Figure 8 Proportion of reproductively active females of the marsupial Didelphis aurita for the 2012–2015 period in CFMA and Pau da Fome, Rio de Janeiro, Brazil.
Figure 6 from: Liu L, Zhang X, Li C, Zhang H, Yanagimoto T, Song N, Gao T (2019) Population genetic structure of Marbled Rockfish, Sebastiscus marmoratus (Cuvier, 1829), in the northwestern Pacific Ocean. ZooKeys 830: 127-144. https://doi.org/10.3897/zookeys.830.30586
Figure 6 Bayesian skyline plot showing the effective female S.marmoratus population size through time. Black solid lines are median estimates of NeT (Ne=effective female population size; T=generation time); blue shading represents the 95% confidence interval of NeT. The y-axis was plotted on a logarithmic scale.
Figure 2 from: Liu L, Zhang X, Li C, Zhang H, Yanagimoto T, Song N, Gao T (2019) Population genetic structure of Marbled Rockfish, Sebastiscus marmoratus (Cuvier, 1829), in the northwestern Pacific Ocean. ZooKeys 830: 127-144. https://doi.org/10.3897/zookeys.830.30586
Figure 2 Phylogenetic tree of control region haplotypes constructed using neighbor-joining algorithms of S.marmoratus with S.schlegelii as outgroup.
Figure 4 from: Liu L, Zhang X, Li C, Zhang H, Yanagimoto T, Song N, Gao T (2019) Population genetic structure of Marbled Rockfish, Sebastiscus marmoratus (Cuvier, 1829), in the northwestern Pacific Ocean. ZooKeys 830: 127-144. https://doi.org/10.3897/zookeys.830.30586
Figure 4 The observed pairwise difference (bars) and the expected mismatch distributions under the sudden-expansion model (solid line) of mtDNA control region haplotypes in S.marmoratus.
High genetic diversity but no geographic structure of Aedes albopictus populations in Reunion Island _ Dataset
<p>Microsatellite dataset of <em>Aedes albopictus</em> individuals sampled in Reunion Island. </p>
Figure 4 from: Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1-14. https://doi.org/10.3897/italianbotanist.4.12439
Figure 4 - Different patterns of E. dens-canis leaves. A Silvery pictorial pattern (SLV-PC) characterized by red-brown (and later green) drawings on a grey-silvery background (Feb. 27, 2015) B Silvery-and-green chess-like leaves with red-brown spots (S&G-CH, Feb. 13, 2016) C Green-mottled leaves with red-brown spots (GRN-MO, Feb. 24th, 2016) D A rare rusty variant of SLV with red-brown leaves (Mt. Adone, 550 m of altitude, March 15, 2015) E A juvenile leaf with clear-silvery spots on green background (GRN-CS, April 11, 2015) F Juvenile lanceolate (JUV-LA) uniformly green (GRN-UN) leaf. Photos taken at Farneto (except D).
Figure 1 from: Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1-14. https://doi.org/10.3897/italianbotanist.4.12439
Figure 1 - Number of individuals of Erythronium dens-canis during spring 2015 in Farneto-C. The histograms show the number of flowering (FLO), mature non-flowering (MNF) and juvenile (JUV) plants. A New plants and B all plants.
Figure 3 from: Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1-14. https://doi.org/10.3897/italianbotanist.4.12439
Figure 3 - Leaf shape in new plants of E. dens-canis . Histograms of A mature non-flowering individuals (MNF) with oval (OV), shield-like (SH) and elongate (EL) leaf shapes, and B juvenile (JUV) plants with oval (OV), elongate (EL) and lanceolate (LA) leaf shapes.
Figure 2 from: Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1-14. https://doi.org/10.3897/italianbotanist.4.12439
Figure 2 - Survivorship of MNF E. dens-canis plants in March 2015. The three major cohorts are shown: Cohort 10 (in blue) with 94 new plants found on March 8th (week 10); Cohort 11 (in red) with 127 new plants found on March 12th (week 11); Cohort 12 (in green) with 82 new plants found on March 19th (week 12).
Figure 5 from: Pupillo P, Astuti G (2017) Population structure of Erythronium dens-canis L. (Liliaceae) in the northern Apennines (Italy). Italian Botanist 4: 1-14. https://doi.org/10.3897/italianbotanist.4.12439
Figure 5 - Discoloration: loss of red pigment from red-brown spots in E. dens-canis leaves. Time course of the discoloration in A adult plants (FLO and MNF), and B JUV plants.
Figure 3 from: Huang X-X, Hsu K-C, Kang B, Kuo P-H, Tsai W-H, Liang C-M, Lin H-D, Wang W-K (2019) Population structure of Aphyocypris normalis: phylogeography and systematics. ZooKeys 872: 77-90. https://doi.org/10.3897/zookeys.872.33105
Figure 3 BEAST-derived chronograms of 107 mitochondrial DNA sequences of Aphyocypris normalis. The S-DIVA analysis graphical representation of the ancestral distribution is given in the box above the node.
Figure 2 from: Huang X-X, Hsu K-C, Kang B, Kuo P-H, Tsai W-H, Liang C-M, Lin H-D, Wang W-K (2019) Population structure of Aphyocypris normalis: phylogeography and systematics. ZooKeys 872: 77-90. https://doi.org/10.3897/zookeys.872.33105
Figure 2 Phylogenetic relationships of the genera Aphyocypris, Candidia, Nipponocypris, and Opsariichthys using ML analyses of cyt b gene sequence data. Numbers along the branches indicate the percentage of bootstrap support obtained in the ML analyses.
Figure 1 from: Huang X-X, Hsu K-C, Kang B, Kuo P-H, Tsai W-H, Liang C-M, Lin H-D, Wang W-K (2019) Population structure of Aphyocypris normalis: phylogeography and systematics. ZooKeys 872: 77-90. https://doi.org/10.3897/zookeys.872.33105
Figure 1 Aphyocypris normalis sampling locations on Hainan Island and adjacent areas. All localities sampled in this study are indicated by •.
Figure 1 in Necromys lasiurus (Cricetidae: Sigmodontinae) from open areas of the Atlantic Forest of Rio de Janeiro: Population structure and implications for the monitoring of hantaviruses
Figure 1. Distribution of Necromys lasiurus sample groups by ecoregion. The points are color-coded by ecoregion and sample group. Insert map shows the Brazilian biomes.
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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.