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Figure 2 in Medium- and large-sized mammal composition in the Chapada dos Veadeiros National Park and adjacent areas, state of Goiás, Brazil
Figure 2. Medium and large-sized mammals recorded in the Chapada dos Veadeiros National Park and surroundings, Goiás, Brazil. (A) Ozotoceros bezoarticus; (B) Tapirus terrestris; (C) Panthera onca; (D) Chrysocyon brachyurus; (E) Myrmecophaga tridactyla; and (F) Mazama gouazoubira.
Figure 1 in Medium- and large-sized mammal composition in the Chapada dos Veadeiros National Park and adjacent areas, state of Goiás, Brazil
Figure 1. Distribution of camera-traps in the sampled area of Chapada dos Veadeiros National Park (delimited polygon) and its surroundings (10 km from the park boundaries), separated by at least 1 km, in the Cerrado of central Brazil. inserted within the Cerrado biome (coordinates of 13°51' to 14°10'S and 47°25' to 47°42'W). The CVNP is considered the largest area of environmental conservation and the most important ecotourism attraction in the region (Barbosa, 2008). The Cerrado region is located in mid-latitudes and presents the main seasonal climatic type (Aw), with annual temperature between 24°C and 26°C and 90% of rainfall concentrated from October to April, while in the dry season (May to September), the air humidity is very low (below 20% in August and September) and the amount of rainfall can reach zero millimeters in a few months (Marcuzzo et al., 2012). In the region of CVNP, there is a predominance of soils poor in nutrients, which ends up preventing the larger plant colonization, whichever the grasslands of the Cerrado Sensu Strictu (Eiten, 1972; Felfili et al., 2007). In total, the CVNP presents 77% of savanna formation, and 9% corresponds to the forest fragments (Porto et al., 2011). On the other hand, the surrounding of the park has the largest sum of private reserves (Private Reserves of Natural Heritage – RPPN) of the State of Goiás, are 21 RPPNs with 21,515.87 ha (30% of CVNP area) and these are hold a higher percentage of forest cover (Falconi & Diniz-Filho, 2003; Silva et al., 2016). 80% of the RPPNs area, located in the Alto Paraiso region, are protected near the areas sampled in this study (Silva et al., 2016).
Fig. 4 in Association Between The Scallop, Pedum Spondyloideum, (Bivalvia: Pteriomorphia: Pectinidae) And Scleractinian Corals From The Wakatobi Marine National Park (Southeastern Sulawesi, Indonesia)
Fig. 4. The number of Pedum spondyloideum occuring in Porites lobata and Por. lutea.
FIGURE 2 in New Records of Hyachelia tortugae Barnard, 1967, and H. lowryi Serejo and Sittrop, 2009 (Amphipoda: Gammaridea: Hyalidae), from Palmyra Atoll National Wildlife Refuge: Cooccurrence on Pacific Green Turtles (Chelonia mydas).
FIGURE 2. Map of Pacific Ocean showing location of Palmyra Atoll.
FIG. 4 in Brève histoire de la collection Gazola de poissons fossiles éocènes du Monte Bolca (Italie) conservée au Muséum national d'Histoire naturelle, Paris
FIG. 4. — Suite.
FIG. 2 in Brève histoire de la collection Gazola de poissons fossiles éocènes du Monte Bolca (Italie) conservée au Muséum national d'Histoire naturelle, Paris
FIG. 2. — Suite.
FIGURE 4 in Oribatid mite diversity in Rhododendron ponticum L. canopy along an altitudinal gradient in Mtirala National Park
FIGURE 4: Changes of oribatid mite (a) abundance and (b) species number along altitudinal gradient in MNP.
FIGURE 2 in Oribatid mite diversity in Rhododendron ponticum L. canopy along an altitudinal gradient in Mtirala National Park
FIGURE 2: Oribatid mite species richness based on species accumulation curves and rarefaction methods for samples taken from rhododendron canopy microhabitats at seven elevations of MNP.
FIGURE 1 in Oribatid mite diversity in Rhododendron ponticum L. canopy along an altitudinal gradient in Mtirala National Park
FIGURE 1: Cluster of faunal similarities of oribatid species from rododendron canopy and forest floor. Explanations of abbreviations are given in table 1.
FIGURE 4 in The Mites (Acari) Associated With Bark Beetles In The Koli National Park In Finland
FIGURE 4: (Prostigmata): a – Mexecheles virginiensis; b – Under site of pedipalpus of M. virginiensis; c – Ereynetes propescutulis; d – Frontal part of E. propescutulis; e – Aethiophenax ipidarius; f – Leg I of A. ipidarius.
FIGURE 2 in The Mites (Acari) Associated With Bark Beetles In The Koli National Park In Finland
FIGURE 2: (cohort Astigmata): a – Nanacarus sp.; b – "Eyes" of Nanacarus sp.; c – Frontal view of Bonomoia pini; d – Dorsal side of B. pini; e – Ventral side of B. pini; f – Boletoglyphus boletophagi.
FIGURE 3 in The Mites (Acari) Associated With Bark Beetles In The Koli National Park In Finland
FIGURE 3: (Oribatida): a – Siculobata leontonycha; b – A claw of tarsus I of S. leontonycha; c – Diapterobates humeralis; d – Frontal part of D. humeralis; e – Carabodes labyrinthicus; f – Ceratoppia bipilis.
FIGURE 1 in The Mites (Acari) Associated With Bark Beetles In The Koli National Park In Finland
FIGURE 1: (Mesostigmata): a – Insectolaelaps quadrisetus; b – Proctolaelaps fiseri; c – Trichouropoda polytricha; d – T. polytricha specimens on ventral abdomen of I. typographus; e – Uroobovella vinicolora; f – U.vinicolora specimen attached on elytra of I. typographus.
FIG. 9. — Wuria milloti n in The water mites of Madagascar (Acari, Hydrachnidia): a revised list completed by original material conserved at the Muséum national d'Histoire naturelle, Paris
FIG. 9. — Wuria milloti n. sp.,
FIG. 7. — Wuria milloti n in The water mites of Madagascar (Acari, Hydrachnidia): a revised list completed by original material conserved at the Muséum national d'Histoire naturelle, Paris
FIG. 7. — Wuria milloti n. sp.; A,, ventral view; B,, genital field. Scale bar: 100 µm.
FIG. 2 in Annotated catalogue of brachyuran type specimens (Crustacea, Decapoda, Brachyura) deposited in the Muséum national d'Histoire naturelle, Paris. Part I. Podotremata
FIG. 2. — Types of jars used in the MNHN alcohol collection of Crustacea (A-C, see text).
FIG. 1 in Annotated catalogue of brachyuran type specimens (Crustacea, Decapoda, Brachyura) deposited in the Muséum national d'Histoire naturelle, Paris. Part I. Podotremata
FIG. 1. — Types of boxes used in the MNHN dry collection of Crustacea (A-D, see text).
Supporting data for: Limited genetic differentiation of Mycetomoellerius mikromelanos in Parc National Soberanía, Panama: Implications for queen dispersal
<p>The coevolutionary relationship between fungus-growing ants (Formicidae: Attini: Attina) and their symbionts has been well-studied in the Panamanian rainforests. To further understand the ecological context of these evolutionary relationships, we have examined the population genetic structure of the fungus-growing ant species<em> Mycetomoellerius</em> <em>mikromelanos</em> Cardenas, Schultz, & Adams 2021, in the Panama Canal Zone. We specifically investigated the presence of population structure, the significance of geographic features (i.e., creeks) limiting gene flow, and relatedness between ant colonies. To accomplish this, we genotyped 85 ant colonies from nine creeks across an approximately 30 km transect in Parque National Soberanía, Panama using double digest restriction-site associated DNA sequencing. We did not find distinct population structures using two genetic clustering methods; however, we did detect an effect of isolation by distance. Furthermore, related colonies were frequently detected on the same creek or neighboring creeks, and some at further geographic distances. Collectively, these findings demonstrate that new colonies tend to establish on natal creeks and occasionally on distant creeks following long-distance dispersal events. We discuss how population genetic patterns reveal the natural history of <em>M</em>. <em>mikromelanos</em> in Parque National Soberanía and how these results fit into the context of fungus-growing ant mutualisms.</p>
GEDI and ALS LiDAR data for the Upper Austrian national park "Kalkalpen"
<p>This dataset contains GEDI L1B,L2B,L2A data for the Upper Austrian national park "Kalkalpen".<br> Also included are the obtained ALS return pulses for the Kalkalpen.</p> <p>The GEDI waveforms are averaged to 1m vertical height layers. Afterwards, the mean noise level stored in GEDI L1B dataset is subtracted from each waveform</p> <p>The ALS pulses are collocated to the GEDI waveforms (x/y-shift = +- 10m).</p>
Database of European Court of Justice and National European Member State Decisions involving restoration practices
<p>Database of European Court of Justice and European Member State National Court Decisions related to environment restoration.</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.