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130 results for “Aquifers”
Figure 7 from: Fiers F, Lagnika M (2015) Four new representatives of the genus Allocyclops Kiefer, 1932 from semi-consolidated subsoil aquifers in Benin (Copepoda, Cyclopoida, Cyclopidae). Subterranean Biology 16: 1-36. https://doi.org/10.3897/subtbiol.16.4467
Figure 7 - Allocyclops pilosus sp. n. A habitus in dorsal view B principal caudal setae of left caudal ramus C habitus in dorsal view D anal somite and caudal rami in dorsal view (Female RBINSc COP 10.310: A, B, D; male RBINSc COP 10.312: C).
Figure 5 from: Lewis JJ, Sawicki TR (2016) Mexistenasellus floridensis sp. n., the first stenasellid isopod discovered from the Floridan aquifer (Crustacea, Isopoda, Asellota). Subterranean Biology 17: 121-132. https://doi.org/10.3897/subtbiol.17.7703
Figure 5 - Mexistenasellus floridensis sp. n. pleopods, male except 4e: a pleopod 1 b pleopod 2 c same, tip of endopodite, anterior d same, posterior e pleopod 2 f pleopod 3 g pleopod 4 h pleopod 5.
Figure 3 from: Lewis JJ, Sawicki TR (2016) Mexistenasellus floridensis sp. n., the first stenasellid isopod discovered from the Floridan aquifer (Crustacea, Isopoda, Asellota). Subterranean Biology 17: 121-132. https://doi.org/10.3897/subtbiol.17.7703
Figure 3 - Mexistenasellus floridensis sp. n., mouthparts: a maxilla 1 b mandible, right, incisors c mandible, left, incisors and lacinia d mandibular palp e maxilliped.
Figure 1 from: Lewis JJ, Sawicki TR (2016) Mexistenasellus floridensis sp. n., the first stenasellid isopod discovered from the Floridan aquifer (Crustacea, Isopoda, Asellota). Subterranean Biology 17: 121-132. https://doi.org/10.3897/subtbiol.17.7703
Figure 1 - Distribution of Stenasellid isopods in the Nearctic Region: 1 Mexistenasellus floridensis 2 Mexistenasellus coahuila 3 Mexistenasellus nulemex 4 Mexistenasellus colei 5 Mexistenasellus parzefalli and Mexistenasellus wilkensi 6 Mexistenasellus magniezi 7 Etlastenasellus confinis 8 Etlastenasellus mixtecus.
Figure 4 from: Lewis JJ, Sawicki TR (2016) Mexistenasellus floridensis sp. n., the first stenasellid isopod discovered from the Floridan aquifer (Crustacea, Isopoda, Asellota). Subterranean Biology 17: 121-132. https://doi.org/10.3897/subtbiol.17.7703
Figure 4 - Mexistenasellus floridensis sp. n., pereopods: a pereopod 1 distal articles, female b spine, pereopod 1, palmar margin of proprodus c pereopod 7, male d same, dactyl.
Figure 2 from: Lewis JJ, Sawicki TR (2016) Mexistenasellus floridensis sp. n., the first stenasellid isopod discovered from the Floridan aquifer (Crustacea, Isopoda, Asellota). Subterranean Biology 17: 121-132. https://doi.org/10.3897/subtbiol.17.7703
Figure 2 - Mexistenasellus floridensis sp. n., male: a habitus b head, antenna 1, antenna 2 peduncle c uropod.
Datasets for "Groundwater flooding on atolls caused by storm surges: effects of the dual-aquifer configuration"
<p>These datasets include the input files for HydroGeoSphere used in this study.</p>
Mean flow direction modulates non-Fickian transport in a heterogeneous alluvial aquifer-aquitard system
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Data from: Monitoring groundwater levels in Oasis Valley, NV, and evaluating potential drawdown during the North Bullfrog aquifer test
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Genomic data reveal similar genetic differentiation in aquifer species with different dispersal capabilities and life histories
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Transcriptome-stable isotope probing provides targeted functional and taxonomic insights into hypoxic pollutant-degrading aquifer microbiota
GEO Series GSE119644. aquifer metagenome. 8 samples. Type: Expression profiling by high throughput sequencing; Other.
Electron acceptor-dependent identification of key anaerobic toluene degraders at a tar-oil contaminated aquifer by Pyro-SIP
GEO Series GSE25449. unidentified. 2 samples. Type: Non-coding RNA profiling by high throughput sequencing.
Frequency dependence of In-suit permeability estimation of well-aquifer system from periodic loading
<p>Data used in manuscript named "Frequency dependence of In-suit permeability estimation of well-aquifer system from periodic loading"</p>
A 3D geomodel of the deep aquifers in the Orléans area of the southern Paris Basin (France)
<p>Construction of this dataset is described in the peer-reviewed publication:</p> <p>Mas, P., Calcagno, P., Caritg-Monnot, S. <em>et al.</em> A 3D geomodel of the deep aquifers in the Orléans area of the southern Paris Basin (France). <em>Sci Data</em> <strong>9</strong>, 781 (2022). https://doi.org/10.1038/s41597-022-01876-4</p> <p>Each geomodel is available in the form of the following files and formats:</p> <ul> <li>Metadata sheet description pdf format</li> <li>GeoModeller project format</li> <li>PDF3D format</li> <li>TSurf format</li> <li>VTK format</li> </ul>
Data from: Getting to the root of organic inputs in groundwaters: stygofaunal plant consumption in a calcrete aquifer
<p>Groundwater environments interact with and support subterranean biota as well as superficial aquatic and terrestrial ecosystems. However, knowledge of subterranean energy flows remains incomplete. Cross-boundary investigations are needed to better understand the trophic structures of groundwater ecosystems and their reliance on carbon inputs from aboveground. In this study we used carbon and nitrogen stable isotope analyses combined with radiocarbon fingerprints to characterise organic flows in groundwater ecosystems. We coupled these data with DNA metabarcoding of the gut contents of consumers to further elucidate organic matter sources and shifts in diet preferences. Samples were collected from the arid zone Sturt Meadows calcrete aquifer under low rainfall (LR) and high rainfall (HR) conditions. Bayesian modelling of Δ<sup>14</sup>C, δ<sup>13</sup>C and δ<sup>15</sup>N data indicated that primary consumers (copepods) incorporated mainly particulate organic carbon (POC) under LR but during HR shifted to root derived material (either exudates or direct root grazing). By contrast, diets of secondary consumers (amphipods) were dominated by root material under both LR and HR. Our DNA metabarcoding-based results indicate that amphipods relied primarily on root inputs from perennial trees (likely <i>Eucalyptus</i> and <i>Callitris</i>) during the dry season (LR). Under HR, diets of both amphipods and copepods also included organic material derived from a broad range of more shallow rooted shrubs, and ephemeral herbs and grasses. Our findings illustrate the complexity of functional linkages between groundwater biota and terrestrial surficial ecosystems in environments where aboveground productivity, diversity and organic matter flux to groundwater are intimately linked to often episodic rainfall.</p>
Supplementary material 1 from: Iepure S, Gouin N, Bertin A, Camacho AI, González-Ramón A, de Cisneros Vencelá CJ, Di Lorenzo T (2018) The use of groundwater crustacean communities as indicators for aquifers quality in the semi-arid region of north-central Chile. ARPHA Conference Abstracts 1: e30126. https://doi.org/10.3897/aca.1.e30126
Supplementary File
Figure 2 from: Nissen BD, Devitt TJ, Bendik NF, Gluesenkamp AG, Gibson R (2018) New occurrence records for stygobiontic invertebrates from the Edwards and Trinity aquifers in west-central Texas, USA. Subterranean Biology 28: 1-13. https://doi.org/10.3897/subtbiol.28.29282
Figure 2 Mophead in spring outlet at Cold Spring, Travis County, Texas, USA.
Metaproteogenomics resolution of a high-CO2 aquifer community reveals a complex cellular adaptation of groundwater Gracilibacteria to a host-dependent lifestyle
<p>This dataset contains the Supplementary files S1 and S2 of the publication "Metaproteogenomics resolution of a high-CO2 aquifer community reveals a complex cellular adaptation of groundwater Gracilibacteria to a host-dependent lifestyle". The first of the datasets is a protein sequence database used as a reference for metaproteomics in the study (with simplified unique headers compatible with the software). The metadata file contains reference names to convert ProteinIDs from the fasta file to their original GeneID as well as further Metadata (such as the functional and taxonomic annotation of the protein identifiers). For more information, please read the publication, currently available as a preprint at https://www.biorxiv.org/content/10.1101/2023.12.18.572140v2 .</p>
Figure 1a-c from: Bishop R, Humphreys W, Longley G (2015) Corrigenda: Epigean and hypogean Palaemonetes sp. (Decapoda, Palaemonidae) from Edwards Aquifer: An examination of trophic structure and metabolism. Subterranean Biology 14: 79–102. Subterranean Biology 15: 105-106. https://doi.org/10.3897/subtbiol.15.4766
Figure 1a-c - The CORRECT figure.
Data from: Getting to the root of organic inputs in groundwaters: stygofaunal plant consumption in a calcrete aquifer
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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OpenNeuro
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