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Figure 3. Maximum likelihood topologies. A, cytochrome oxidase 1 fragments. B, internal transcribed spacer fragment. C, combined data set. Bootstrap supports over 75 in Integrative taxonomy of Parasabella and Sabellomma (Sabellidae: Annelida) from Australia: description of new species, indication of cryptic diversity, and translocation of some species out of their natural distribution range
Figure 3. Maximum likelihood topologies. A, cytochrome oxidase 1 fragments. B, internal transcribed spacer fragment. C, combined data set. Bootstrap supports over 75% shown on nodes. Scale bar, average of nucleotide substitutions per site.
Fig. 2 in Seasonal Activity of Carabidae (Coleoptera) in Forest Fragments and Crops in São Paulo, Brazil
Fig. 2. Seasonal activity of dominant species of Carabidae in three areas of São Paulo, Brazil. NTS = no-tillage system, CTS = conventional tillage system. Solid line = soybean/corn crops; dashed line = forest fragment.
Fig. 1 in Seasonal Activity of Carabidae (Coleoptera) in Forest Fragments and Crops in São Paulo, Brazil
Fig. 1. Seasonal activity of dominant species of Carabidae in three areas of São Paulo, Brazil. NTS = no-tillage system, CTS = conventional tillage system. Solid line = soybean/corn crops; dashed line = forest fragment.
FIGURE 3 in An updated checklist of bryophytes for the state of Paraíba, a Brazilian hotspot: new records and biological spectrum in a Seasonally Dry Tropical Forest fragment
FIGURE 3. Representation of life forms in terms of bryophyte species richness in thee studied seasonally dry tropical forest fragment in the Northeast Region of Brazil.
FIGURE 2 in An updated checklist of bryophytes for the state of Paraíba, a Brazilian hotspot: new records and biological spectrum in a Seasonally Dry Tropical Forest fragment
FIGURE 2. Results for the Weighted Pair-Group Method with Arithmetic mean (WPGMA) based on the Sørensen similarity index for all species at sites listed by Germano et al. (2016) and the studied seasonally dry tropical forest fragment (SDTF). Cophenetic Correlation Coefficient (CCC) = 0.83. The areas are named following Germano et al. (2016) with P = point/sampled area.
Figure 24. Eoungulatum kudukensis, URBAC 99–42, right maxillary fragment with alveoli for P5, M1-3, A in Phylogenetic analysis, taxonomic revision, and dental ontogeny of the Cretaceous Zhelestidae (Mammalia: Eutheria)
Figure 24. Eoungulatum kudukensis, URBAC 99–42, right maxillary fragment with alveoli for P5, M1-3, A, stereophotograph and line drawing in occlusal view, and photograph and line drawing in labial view; URBAC 03–60, right P5, B, stereophotographs of occlusal, labial, and distal views; URBAC 03–185, left M1, C, stereophotographs of occlusal, labial, and distal views.
Figure 12. Parazhelestes mynbulakensis, URBAC 04–162, right maxillary fragment with M2 and alveoli for P1-P5 in Phylogenetic analysis, taxonomic revision, and dental ontogeny of the Cretaceous Zhelestidae (Mammalia: Eutheria)
Figure 12. Parazhelestes mynbulakensis, URBAC 04–162, right maxillary fragment with M2 and alveoli for P1-P5, and M1. Stereophotographs of M2, A, occlusal; B, labial; C, distal views. D, photograph and line drawing of occlusal view of maxillary fragment.
Figure A2 in Trophic segregation of the Burrowing Owl and the American Kestrel in fragmented desert in Mexico
Figure A2. Cumulative identified taxa (%) according to the number of egested pellets of F. sparverius in Valle Santo Domingo, in Baja California Sur, Mexico during the 2017 breeding season.
Figure A1 in Trophic segregation of the Burrowing Owl and the American Kestrel in fragmented desert in Mexico
Figure A1. Cumulative identified taxa (%) according to the number of egested pellets of A. cunicularia in Valle Santo Domingo, in Baja California Sur, Mexico during the 2017 breeding season.
Figure 3 in Trophic segregation of the Burrowing Owl and the American Kestrel in fragmented desert in Mexico
Figure 3. Area (km2) covered by natural vegetation around (0.5 km, 1 km, or 2 km radii buffers) nests of the Burrowing Owl and American Kestrel in Valle Santo Domingo, in Baja California Sur, Mexico during the 2017 breeding season.
Figure 2 in Trophic segregation of the Burrowing Owl and the American Kestrel in fragmented desert in Mexico
Figure 2. Plot of the Percent Contribution to Differences (PCD) in the diets of the Burrowing Owl and the American Kestrel, for relative frequency (F%) and relative biomass (B%) data, as per the SIMPER analysis. Valle Santo Domingo, in Baja California Sur, Mexico during the 2017 breeding season.
Figure 1 in Trophic segregation of the Burrowing Owl and the American Kestrel in fragmented desert in Mexico
Figure 1. Fragmented and natural scrubland surroundings in Valle de Santo Domingo, Baja California Sur, Mexico. Dots mark the spots where pellets casted by A. cunicularia (white dots) and F. sparverius (black dots) were collected. Influence areas (0.5 km, 1 km, or 2 km radii) around nests of the Burrowing Owl (dotted circles) and American Kestrel (continuous-line circles) within the agriculture matrix. Patches of natural vegetation are shown in white.
FIGURE 1. Chusquea contrerasii. A. Apical culm fragment, showing flowering branches. B. Synflorescence. C in Chusquea contrerasii and C. guzmanii (Poaceae, Bambusoideae, Bambuseae, Chusqueinae), two new endemic species from Jalisco, Mexico
FIGURE 1. Chusquea contrerasii. A. Apical culm fragment, showing flowering branches. B. Synflorescence. C. Lower glumes (I, II). D. Upper glumes (III, IV). E. Lemma dorsal view. F. Palea lateral view. G. Lodicules. Based on A. Flores-Argüelles & A.R. Romero-Guzmán 919. Drawn by Daniel Barba.
Supplementary Data for Calculated Electron Impact Ionization Fragmentation Patterns
<p>Supplementary Data for the paper: Calculated Electron Impact Ionization Fragmentation Patterns</p> <p> </p> <p>Data includes:</p> <p> - Total and partial cross sections.</p> <p> - Computed Dissociation Thresholds, before and after corrected to Koopman's Theorem. </p> <p> </p> <p> </p>
Larval A. bishopi microsatellite data from: Metapopulation genetics of endangered reticulated flatwoods salamanders (Ambystoma bishopi) in a dynamic and fragmented landscape
<p>The dataset consists of 9 microsatellite markers used to analyze reticulated flatwoods salamanders' (<em>Ambystoma bishopi</em>) population structure on Eglin AFB. Samples came from various breeding ponds and allele sizes were scored using GeneMapper (GeneMapper v4.0; Applied Biosystems). Data was collected via allele scoring in GeneMapper by two independent researchers. Allele sizes for each individual have been re-formatted for various programs using the microsatellite Add-in in Excel as well as by using the GenAlEx extension in Excel. </p>
Fragment Hotspot Mapping to Identify Selectivity-Determining Regions between Related Proteins - Case Studies
<p>Dataset and scripts accompanying the publication "Fragment Hotspot Mapping to Identify Selectivity-Determining Regions between Related Proteins"</p>
FIGURE. Roussoella pseudohysterioides (GMB0009). a–d. Ascostromata developing on bamboo culm. e, f. Vertical sections of ascostromata. g–j. Asci containing eight ascospores. k. Fragment of ascostromata in KOH without stromatal pigments. l–m. Ascus apex in Melzer's reagent. n–r. Dark brown ascospores. Scale bars: j–r = 10 μm. in Yunnan-Guizhou Plateau: a mycological hotspot
FIGURE. Roussoella pseudohysterioides (GMB0009). a–d. Ascostromata developing on bamboo culm. e, f. Vertical sections of ascostromata. g–j. Asci containing eight ascospores. k. Fragment of ascostromata in KOH without stromatal pigments. l–m. Ascus apex in Melzer's reagent. n–r. Dark brown ascospores. Scale bars: j–r = 10 μm.
Shell inscription on the fragmented Sondhni Pillar
<p>Figure 37 in</p> <p><em>To engrave his virtues on the disc of the moon… Inscriptions of the Aulikaras and Their Associates</em></p> <p>Dániel Balogh, 2019</p> <p>Shell inscription(?) on the fragmented Sondhni Pillar.</p> <p>Siddham OB00087</p> <p>Photograph by the author, 2017. Scale: 5 cm/2”</p>
Population structure and genetic variation of fragmented mountain birch forests in Iceland
<p>Data avilability for the manuscript JOH-2022-096.R2 accepted for application</p>
Dataset for "Constraints on magma properties at fragmentation during the 2011 sub-Plinian eruptions of Kirishima Shinmoe-dake volcano, Japan" by Kozono, T. and Okumura S. (submitted to JGR-Solid Earth)
<p>This dataset includes petrological data of pumices from the 2011 sub-Plinian eruptions at Kirishima Shinmoe-dake volcano, Japan, used in "Constraints on magma properties at fragmentation during the 2011 sub-Plinian eruptions of Kirishima Shinmoe-dake volcano, Japan" by Kozono, T. and Okumura S. (submitted to JGR-Solid Earth).</p>
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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.