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330 results for “symbiosis”
FIGURE 2 in Phyllodesmium rudmani (Mollusca: Nudibranchia: Aeolidoidea), a new solar powered species from the IndoWest Pacific with data on its symbiosis with zooxanthellae
FIGURE 2. Phyllodesmium rudmani, morphology: A: Distal genital system. B: Left jaw seen from interior side. C: Masticatory margin of jaw. Abbreviations: am ampulla, al albumen gland, me membrane gland, mu mucous gland, p penis, pr prostate, rs receptaculum seminis.
FIGURE 1 in Phyllodesmium rudmani (Mollusca: Nudibranchia: Aeolidoidea), a new solar powered species from the IndoWest Pacific with data on its symbiosis with zooxanthellae
FIGURE 1. Phyllodesmium rudmani, living animals from North Sulawesi (A–D, F) and the Philippines (E): A: Dorsal view of moving specimen. B: Ventral view of moving specimen. C: P. rudmani with polyps of its food coral Xenia (right). D: Animal sitting inactive and mimicking Xenia polyps (same specimen as in F). E: Moving specimen from the Philippines in situ. F: One specimen sitting in Xenia.
FIGURES 33–38 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 33–38. Gymnopholus spp.: (33) Transfer apparatus of G. inexspectatus sp. n., holotype; (34) Transfer apparatus of G. nitidus; (35) Left wing of G. (Symbiopholus) lichenifer; (36) Left wing of G. (Niphetoscapha) inexspectatus sp. n., allotype; (37) labels of G. wichmanni, lectotype; (38) labels of G. wichmanni, paralectotype.
FIGURES 21–24 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 21–24. Gymnopholus (Niphetoscapha) spp.; Male genitalia; body of penis in dorsal aspect (left), in profile (right): (21) G. audax; (22) G. nitidus; (23) G. inexspectatus sp. n., holotype; (24) G. wichmanni, paralectotype.
FIGURES 17–20 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 17–20. Elytral apex of Gymnopholus (Niphetoscapha) spp., female; in dorsoapical aspect (left), in profile (right): (17) G. audax; (18) G. nitidus; (19) G. wichmanni, lectotype; (20) G. inexspectatus sp. n., allotype.
FIGURES 9–12 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 9–12. Head and rostrum of Gymnopholus (Niphetoscapha) spp.: (9) G. audax; (10) G. nitidus; (11) G. inexspectatus sp. n., holotype; (12) G. wichmanni, lectotype.
FIGURES 5–8 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 5–8. Habitus of Gymnopholus (Niphetoscapha) spp., dorsal aspect: (5) G. inexspectatus sp. n., holotype; (6) G. inexspectatus sp. n., allotype; (7) G. wichmanni, paralectotype, male; (8) G. wichmanni, lectotype, female.
FIGURES 1–4 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 1–4. Habitus of Gymnopholus (Niphetoscapha) spp., dorsal aspect: (1) G. audax, male; (2) G. audax, female; (3) G. nitidus, male; (4) G. nitidus, female.
FIGURE 41 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURE 41. Distribution of G. (Niphetoscapha) wichmanni and G. (Niphetoscapha) inexspectatus sp. n.. Base map created with GeoMapApp (http://www.geomapapp.org).
FIGURES 25–32 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 25–32. Gymnopholus (Niphetoscapha) spp.; female terminalia: (25) G. audax; (26) G. inexspectatus sp. n., allotype; (27) sternite VIII of G. audax; (28) sternite VIII of G. inexspectatus sp. n., allotype; (28) spermatheca of G. audax; (29) spermatheca of G. inexspectatus sp. n., allotype; (31) hemisternite of G. audax; (32) hemisternite of G. inexspectatus sp. n., allotype.
FIGURES 13–16 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURES 13–16. Pronotum of Gymnopholus (Niphetoscapha) spp., female: (13) G. audax (14) G. nitidus; (15) G. inexspectatus sp. n., allotype; (16) G. wichmanni, lectotype.
FIGURE 42 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURE 42. Distribution of G. (Niphetoscapha) audax and G. (Niphetoscapha) nitidus. Base map created with GeoMapApp (http://www.geomapapp.org).
FIGURE 39 in Revision of the subgenus Niphetoscapha Heller of Gymnopholus Heller (Coleoptera, Curculionoidea, Entiminae, Eupholini) and a new species with epizoic symbiosis from West New Guinea
FIGURE 39. Elytral base of Gymnopholus (Niphetoscapha) nitidus with exudates. FIGURES 40a–b. Gymnopholus (Niphetoscapha) inexspectatus sp. n., live specimen with incrustrations of algae and lichens; photographs M. Wild, Mokndoma.
Differential responses of Medicago truncatula NLA homologs to nutrient deficiency and arbuscular mycorrhizal symbiosis
Open the record for dataset details and reuse information.
Sustainable Development of Sorghum through the Promotion of Microbial Symbiosis and Disease Resistance: Supplemental Data
<p>Supplemental data for Chapter 3 of the dissertation titled: "Sustainable Development of Sorghum through the Promotion of Microbial Symbiosis and Disease Resistance"</p>
Symbiosis Bacteria with Nizamuddinia Zanardinii and Chiton Chiton Lamyi
<p>This study aimed to investigate the antagonistic and antimicrobial properties of symbiotic bacteria isolated from <em>Chiton Lamayi</em> and <em>Nizamuddinia Zanardinii</em> against human and marine pathogens.</p>
Data from: Mycorrhizal symbiosis pathway and edaphic fertility frame root economics space among tree species
<p><span>The root economics space (RES) is multidimensional and largely shaped by belowground biotic and abiotic influences. However, how root-fungal symbioses and edaphic fertility drive this complexity remains unclear. </span></p> <p><span>Here, we measured absorptive root traits of 112 tree species in temperate and subtropical forests of China, including traits linked to functional differences between arbuscular mycorrhizal (AM) and ectomycorrhizal (ECM) hosts. </span></p> <p><span>Our data, from known mycorrhizal tree species, revealed a 'fungal-symbiosis' dimension distinguishing AM from ECM species. This divergence likely resulted from the contrasting mycorrhizal evolutionary development of AM versus ECM associations. Increased root tissue cortical space facilitates AM symbiosis, whereas increased root branching favors ECM symbiosis. Irrespective of mycorrhizal type, a 'root-lifespan' dimension reflecting aspects of root construction cost and defense was controlled by variation in specific root length and root tissue density, which was fully independent of root nitrogen content. Within this function-based RES, we observed a substantial covariation of axes with soil phosphorus and nitrate levels, highlighting the role played by these two axes in nutrient acquisition and conservation. </span></p> <p><span>Overall, our findings demonstrate the importance of</span><span> evolved mycorrhizal symbiosis pathway and edaphic fertility in framing the </span><span>RES</span><span>, and</span> <span>provide theoretical and mechanistic insights into the complexity of root economics.</span></p>
Supplementary Tables: Host cellular immunity and nutrition respond to intracellular symbiont abundance in an obligate deep-sea symbiosis
<p>Contains supplementary tables for the pre-print manuscript: Host cellular immunity and nutrition respond to intracellular symbiont abundance in an obligate deep-sea symbiosis</p>
Supplementary data for: Convergent reductive evolution of cyanobacteria in symbiosis with Dinophysiales dinoflagellates
<p>Supplementary data for phylogenomic analysis in "<strong>Convergent reductive evolution of cyanobacteria in symbiosis with Dinophysiales dinoflagellates</strong>" by Nakayama, T., Nomura, M., Yabuki, A., Shiba, K., Inaba, K., & Inagaki, Y. (<a href="https://www.nature.com/articles/s41598-024-63502-0">https://www.nature.com/articles/s41598-024-63502-0</a>; <a href="https://doi.org/10.1101/2024.01.11.574452">https://doi.org/10.1101/2024.01.11.574452</a>).</p> <p>The text file <code>CregCyn_phylogenomic_tree.newick</code> contains a newick formatted phylogenomic tree shown in Figure 2 of the paper. Note that the tree is unrooted.<br>The compressed file <code>phylogenomic_analysis_dataset.tar.gz</code> contains the following directories and files.</p> <ul> <li><code>concatenated_dataset.fasta </code>: dataset used for the phylogenomic analysis, constructed by combining 143 protein alignments.</li> <li><code>single_protein_datasets</code>: directory containing each orthologous protein sequence from which the concatenated dataset was derived.<br>It also contains the following subdirectories. <ul> <li><code>original_sequences</code>: contains the multi-FASTA files of the original sequences for each orthologous protein.</li> <li><code>multiple_alignments</code>: contains multiple alignments for each orthologous protein.</li> <li><code>trimmed_alignments</code>: contains multiple alignments for each protein, with positions not suitable for analysis removed. These files are combined into <code>single_protein_dataset.fasta</code>.</li> </ul> </li> </ul>
Data and code: Unpredictable soil conditions can affect the prevalence of a microbial symbiosis
<p>Contains code and data for the publication Unpredictable soil conditions can affect the prevalence of a microbial symbiosis in PeerJ. Check the paper and README for more information.</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.