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Figure 2 from: Beaulieu F, Quintero-Gutiérrez EJ, Sandmann D, Klarner B, Widyastuti R, Cómbita-Heredia O, Scheu S (2019) Review of the mite genus Ololaelaps (Acari, Laelapidae) and redescription of O. formidabilis Berlese. ZooKeys 853: 1-36. https://doi.org/10.3897/zookeys.853.29407
Figure 2 Ololaelapsformidabilis, adult female. Ventral idiosoma. Green arrows show the two inverted V-shaped ridges; other arrows indicate parapodal ("par") and metapodal ("met") plates. Scale bar: 100 µm.
Figure 3 from: Beaulieu F, Quintero-Gutiérrez EJ, Sandmann D, Klarner B, Widyastuti R, Cómbita-Heredia O, Scheu S (2019) Review of the mite genus Ololaelaps (Acari, Laelapidae) and redescription of O. formidabilis Berlese. ZooKeys 853: 1-36. https://doi.org/10.3897/zookeys.853.29407
Figure 3 Ololaelapsformidabilis, adult female. A ventrolateral region of idiosoma, showing the well-reticulated epipleuron (ventrolateral portion of dorsal shield), gland opening gd4, and the dorsal shield's marginal strip ("strip"); note that the epipleuron appears broader than in live specimen, because the specimen was squashed on the slide, as indicated by the broken dorsal shield B central region of the dorsal shield, showing the light reticulation of the opisthonotal area (near J1, Jx) and even lighter reticulation of the podonotal area (see between setae j5) C–E metapodal platelet (arrow), variously fused to the parapodal plate and contiguous with the hologastric shield. Scale bars: 50 µm (A); 100 µm (B); 50 µm (C–E).
Figure 4 from: Beaulieu F, Quintero-Gutiérrez EJ, Sandmann D, Klarner B, Widyastuti R, Cómbita-Heredia O, Scheu S (2019) Review of the mite genus Ololaelaps (Acari, Laelapidae) and redescription of O. formidabilis Berlese. ZooKeys 853: 1-36. https://doi.org/10.3897/zookeys.853.29407
Figure 4 Ololaelapsformidabilis, adult female A subcapitulum B chelicera (antiaxial view) C gnathotectum D palp, with inset showing palp apotele. Scale bar: 50 µm.
Supplementary material 1 from: Galasso G, Domina G, Ardenghi NMG, Aristarchi C, Bacchetta G, Bartolucci F, Bonari G, Bouvet D, Brundu G, Buono S, Caldarella O, Calvia G, Cano-Ortiz A, Corti E, D'Amico FS, D'Antraccoli M, Di Turi A, Dutto M, Fanfarillo E, Ferretti G, Fiaschi T, Ganz C, Guarino R, Iberite M, Laface VLA, La Rosa A, Lastrucci L, Latini M, Lazzaro L, Lonati M, Lozano V, Luchino F, Magrini S, Mainetti A, Manca M, Mugnai M, Musarella CM, Nicolella G, Olivieri N, Orrù I, Pazienza G, Peruzzi L, Podda L, Prosser F, Ravetto Enri S, Restivo S, Roma-Marzio F, Ruggero A, Scoppola A, Selvi F, Spampinato G, Stinca A, Terzi M, Tiburtini M, Tornatore E, Vetromile R, Nepi C (2019) Notulae to the Italian alien vascular flora: 7. Italian Botanist 7: 157-182. https://doi.org/10.3897/italianbotanist.7.36386
: Data type: species data
Figure 3 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 3 Map of Rio de Janeiro State showing the distribution of Crotonrizzinii (black circles). The inset map of Brazil on the left provides the context with the state of Rio de Janeiro highlighted in grey. ES = Espírito Santo, MG = Minas Gerais, RJ = Rio de Janeiro, SP = São Paulo.
Figure 2 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 2 Images from herbarium specimens of Crotonrizzinii. A Flowering branch B inflorescence C indumentum on the adaxial surface of the lamina D indumentum on the abaxial surface of the lamina E detail of leaf showing the two acropetiolar glands F stipules G detail of a bract of a cymule with glands (colleters) at the base H mature pistillate flower I detail of the styles connate at the base J pistillate flower with ovary removed, showing disc and a gland at the base of one of the sepals K seed (ventral surface). (A, BS.Q. Farias 241C, D, GS.Q. Farias & J.L. Silva 239E, F, KS.Q. Farias & J.L. Silva 234; H, I, JS.Q. Farias & J.L. Silva 205, holotype).
Figure 1 from: Farias SQ, Medeiros D, Riina R (2019) A new species of dragon's blood Croton (Euphorbiaceae) endemic to the Serra dos Órgãos (Rio de Janeiro, Brazil). PhytoKeys 126: 13-24. https://doi.org/10.3897/phytokeys.126.35649
Figure 1 Crotonrizzinii. A Adult individual in hillside forest B young flowering branch C mature flowering branch D detail of a mature flowering branch E detail of laciniate-glandular stipules F young branch showing yellowish latex G detail of leaf showing acropetiolar glands H–K stages of development of pistillate flowers H top view of a young pistillate flower I young pistillate flower showing a maculate gland on the distal portion of the sepal J young pistillate flower K mature pistillate flower L fruit M inflorescence showing pistillate and staminate flowers N inflorescence showing fruits. (Photos by S.Q. Farias).
Figure 2 from: Medina D, Ibáñez R, Lips KR, Crawford AJ (2019) Amphibian diversity in Serranía de Majé, an isolated mountain range in eastern Panamá. ZooKeys 859: 117-130. https://doi.org/10.3897/zookeys.859.32869
Figure 2 Individual-based rarefaction curves showing the estimated richness as a function of the upper 95% confidence interval (CI) calculated by the function Mao Tao. A Rarefaction curve combining all data obtained for the Serranía de Majé transect B rarefaction curves for low (120 – 150 m), intermediate (797 m), and high elevation (1,240–1,365 m) survey sites.
Figure 3 from: Medina D, Ibáñez R, Lips KR, Crawford AJ (2019) Amphibian diversity in Serranía de Majé, an isolated mountain range in eastern Panamá. ZooKeys 859: 117-130. https://doi.org/10.3897/zookeys.859.32869
Figure 3 Site-level dendrogram based on Jaccard dissimilarities and built with the unweighted pair-group method based on arithmetic averages (UPGMA). This analysis was based on all post-metamorphic amphibians captured at each site.
Figure 4 from: Medina D, Ibáñez R, Lips KR, Crawford AJ (2019) Amphibian diversity in Serranía de Majé, an isolated mountain range in eastern Panamá. ZooKeys 859: 117-130. https://doi.org/10.3897/zookeys.859.32869
Figure 4 Diagram showing a decrease with elevation in the similarities of amphibian species assemblages associated with sites from the Serranía de Piedras-Pacora mountain range and the isolated Serranía de Majé mountain range. The numbers represent the shared species between sites (N), Jaccard similarity coefficients (N) and total number of species at the site level (N). Each color represents an elevation category, where the lowlands (< 400 m) are represented in yellow, mid-elevation sites (400–800 m) in green, and highlands (> 800 m) in blue. NA = no data available.
Figure 1 from: Medina D, Ibáñez R, Lips KR, Crawford AJ (2019) Amphibian diversity in Serranía de Majé, an isolated mountain range in eastern Panamá. ZooKeys 859: 117-130. https://doi.org/10.3897/zookeys.859.32869
Figure 1 Map showing the location of the study sites in the Serranía de Majé and the Serranía de Piedras-Pacora across the valley of the Chepo River.
Supplementary material 1 from: Medina D, Ibáñez R, Lips KR, Crawford AJ (2019) Amphibian diversity in Serranía de Majé, an isolated mountain range in eastern Panamá. ZooKeys 859: 117-130. https://doi.org/10.3897/zookeys.859.32869
: Data type: specimen list.
Supplementary material 2 from: Song R, Zhang D, Gao J-W, Cheng X-F, Xie M, Li H, Wu Y-A (2019) Characterization of the complete mitochondrial genome of Brentisentis yangtzensis Yu & Wu, 1989 (Acanthocephala, Illiosentidae). ZooKeys 861: 1-14. https://doi.org/10.3897/zookeys.861.34809
: Data type: species data
Figure 2 from: Song R, Zhang D, Gao J-W, Cheng X-F, Xie M, Li H, Wu Y-A (2019) Characterization of the complete mitochondrial genome of Brentisentis yangtzensis Yu & Wu, 1989 (Acanthocephala, Illiosentidae). ZooKeys 861: 1-14. https://doi.org/10.3897/zookeys.861.34809
Figure 2 Phylogenetic tree of acanthocephalans inferred from maximum likelihood analysis with concatenated nucleotide sequence of all 36 genes (12 PCGs, 2 rRNAs, and 22 tRNAs). Bootstrap (BS)/Bayesian posterior probability (BPP) support values are shown above the nodes, only BS < 100 and BPP < 1 are displayed.
Supplementary material 1 from: Song R, Zhang D, Gao J-W, Cheng X-F, Xie M, Li H, Wu Y-A (2019) Characterization of the complete mitochondrial genome of Brentisentis yangtzensis Yu & Wu, 1989 (Acanthocephala, Illiosentidae). ZooKeys 861: 1-14. https://doi.org/10.3897/zookeys.861.34809
: Data type: molecular data
Supplementary material 4 from: Song R, Zhang D, Gao J-W, Cheng X-F, Xie M, Li H, Wu Y-A (2019) Characterization of the complete mitochondrial genome of Brentisentis yangtzensis Yu & Wu, 1989 (Acanthocephala, Illiosentidae). ZooKeys 861: 1-14. https://doi.org/10.3897/zookeys.861.34809
: Data type: molecular data
Supplementary material 3 from: Song R, Zhang D, Gao J-W, Cheng X-F, Xie M, Li H, Wu Y-A (2019) Characterization of the complete mitochondrial genome of Brentisentis yangtzensis Yu & Wu, 1989 (Acanthocephala, Illiosentidae). ZooKeys 861: 1-14. https://doi.org/10.3897/zookeys.861.34809
: Data type: molecular data
Relationships of research outputs and projects in NUSL, Czech R&D Information System and OpenAIRE: Supporting Data for Master Thesis
<p>Research data for master thesis related to relationships of research outputs and projects in three resources: Czech National Repository of Grey Literature (www.nusl.cz), Czech Research and Development Information System (www.rvvi.cz) and OpenAIRE (www.openaire.eu). The dataset relates to relationships between research outputs and research projects. Collected in July 2019.</p>
Supplementary material 1 from: Stinca A, Chianese G, D'Auria G, Fascetti S, Ravo M, Romano VA, Salerno G, Astuti G, Bartolucci F, Bernardo L, Bonari G, Bouvet D, Cancellieri L, Carli E, Caruso G, Catalano I, Cennamo GD, Ciaschetti G, Conti F, Di Pietro R, Fortini P, Gangale C, Lapenna MR, Lattanzi E, Marcucci R, Peccenini S, Pennesi R, Perrino EV, Peruzzi L, Roma-Marzio F, Scoppola A, Tilia A, Villani M, Rosati L (2019) Contribution to the floristic knowledge of eastern Irpinia and Vulture-Melfese area (Campania and Basilicata, southern Italy). Italian Botanist 8: 1-16. https://doi.org/10.3897/italianbotanist.8.37818
: Data type: species data
Figure 1 from: Stinca A, Chianese G, D'Auria G, Fascetti S, Ravo M, Romano VA, Salerno G, Astuti G, Bartolucci F, Bernardo L, Bonari G, Bouvet D, Cancellieri L, Carli E, Caruso G, Catalano I, Cennamo GD, Ciaschetti G, Conti F, Di Pietro R, Fortini P, Gangale C, Lapenna MR, Lattanzi E, Marcucci R, Peccenini S, Pennesi R, Perrino EV, Peruzzi L, Roma-Marzio F, Scoppola A, Tilia A, Villani M, Rosati L (2019) Contribution to the floristic knowledge of eastern Irpinia and Vulture-Melfese area (Campania and Basilicata, southern Italy). Italian Botanist 8: 1-16. https://doi.org/10.3897/italianbotanist.8.37818
Figure 1 Location of study area and sampling sites (for details, see Suppl. materials 1: S2 and S3_1–S3_8).
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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.