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435 results for “myrmecophilous”
Figs 1-8 in A new myrmecophilous species of Eurysunius from Turkey (Coleoptera: Staphylinidae: Paederinae)
Figs 1-8: Astenus kociani nov.sp.: (1) forebody; (2) median dorsal portion of head; (3) antenna; (4) postero-median portion of pronotum; (5-6) aedeagus in lateral and in ventral view; (7-8) apical portion of ventral process of aedeagus in lateral and in ventral view. Scale bars: 1: 0.5 mm; 3, 5-6: 0.2 mm; 2, 4, 7-8: 0.1 mm.
Map 1 in A new species of the myrmecophilous genus Ecitonides from Peru (Coleoptera: Staphylinidae: Paederinae)
Map 1: Distribution of Ecitonides species. Open squares: E. brevicornis; filled square: E. volans; open and filled triangles: E. tuberculosus; filled triangle: E. verrucosus; open diamond: E. longiceps; filled diamond: E. spectabilis; filled circle: E. fraterculus. The data for all the species, except E. volans, are taken from SEEVERS (1965).
Figs 1-5 in A new species of the myrmecophilous genus Ecitonides from Peru (Coleoptera: Staphylinidae: Paederinae)
Figs 1-5: Ecitonides volans nov.sp.: (1) habitus; (2) forebody in lateral view; (3) head in lateral view; (4) antenna; (5) male sternite VIII. Scale bars: 1-2: 1.0 mm; 3-5: 0.5 mm.
Figs 6-8 in A new species of the myrmecophilous genus Ecitonides from Peru (Coleoptera: Staphylinidae: Paederinae)
Figs 6-8: Ecitonides volans nov.sp.: (6) abdomen; (7) aedeagus in lateral view; (8) aedeagus in ventral view. Scale bars: 6: 1.0 mm; 7-8: 0.5 mm.
Figs. 1–7 in On the myrmecophilous genus Systellus Kleine (Coleoptera: Brentidae), with systematic and biological notes on S. mentaweicus (Senna)
Figs. 1–7. Systellus mentaweicus, male (from Ulu Gombak, Selangor, Peninsular Malaysia): 1, Habitus, dorsal view; 2, ditto, ventral view; 3, head, dorsal view; 4, ditto, ventral view; 5, left antenna; 6, umbilicate pores on right elytra; 7, right fore leg. Scale bars = 1.0 mm.
Figs. 11–14 in On the myrmecophilous genus Systellus Kleine (Coleoptera: Brentidae), with systematic and biological notes on S. mentaweicus (Senna)
Figs. 11–14. Systellus mentaweicus, male (from Ulu Gombak, Selangor, Peninsular Malaysia): 11–13, Left to right: Tegmen and parameres, dorsal and lateral, aedeagus, dorsal; 14, caudal segments of abdomen, internal view, showing short spiculum relictus and straight spiculum gastrale. Scale bars = 0.5 mm
Figs. 8–10 in On the myrmecophilous genus Systellus Kleine (Coleoptera: Brentidae), with systematic and biological notes on S. mentaweicus (Senna)
Figs. 8–10. Systellus mentaweicus, female (from Ulu Gombak, Selangor, Peninsular Malaysia): 8, Habitus, dorsal view; 9, ditto, ventral view; 10, head, ventral view. Scale bars = 1.0 mm.
Figs. 15–17 in On the myrmecophilous genus Systellus Kleine (Coleoptera: Brentidae), with systematic and biological notes on S. mentaweicus (Senna)
Figs. 15–17. Habitat of Systellus mentaweicus at Field Studies Centre, Ulu Gombak, Selagor, Peninsular Malaysia: 15, Female dropping its head from the host ant nest entrance; 16, fallen branch on which the host ant nest was found; 17, interior of the host ant nest.
FIGURES 32–46 in Sicariomorpha, a New Myrmecophilous Goblin Spider Genus (Araneae, Oonopidae) Associated with Asian Army Ants
FIGURES 32–46. Sicariomorpha maschwitzi, comb. nov., 32, 33, 42–46, male; 34–41, female. 32–33, spinnerets. 34, leg I, lateral; 35, leg III, lateral; 36, leg IV, lateral. 37–46, tarsal organ, dorsal view. 37, 42, palp; 38, 43, leg I; 39, 44, leg II; 40, 45, leg III; 41, 46, leg IV.
FIGURES 23−31 in Sicariomorpha, a New Myrmecophilous Goblin Spider Genus (Araneae, Oonopidae) Associated with Asian Army Ants
FIGURES 23−31. Sicariomorpha maschwitzi, comb. nov., 23–27, 29–31, male. 23, Dorsal; 24, ventral; 25, lateral; 26, anterior; 27, anterior portion of carapace, ventral; 28, female carapace, anterior; 29, eyes, anterior; 30, chelicera fang, ventral; 31, chelicera fang venom duct opening.
FIGURES 17–22 in Sicariomorpha, a New Myrmecophilous Goblin Spider Genus (Araneae, Oonopidae) Associated with Asian Army Ants
FIGURES 17–22. Sicariomorpha maschwitzi, comb. nov., female. 17, Dorsal; 18, ventral; 19, carapace, dorsal; 20, lateral; 21, abdomen, anterolateral; 22, carapace, anterior.
FIGURES 9–16 in Sicariomorpha, a New Myrmecophilous Goblin Spider Genus (Araneae, Oonopidae) Associated with Asian Army Ants
FIGURES 9–16. Sicariomorpha maschwitzi, comb. nov., 9–14, male palp; 13–16, female genitalia, ventral view. 9, Retrolateral; 10, prolateral; 11, ventral; 12, frontal; 13, dorsal; 14, Palp distal (embolus and conductor), dorsal view; 15, cleared; 16, internal genital sclerite. Scale bars = 0.10 mm.
FIGURES 1–2. 1 in Sicariomorpha, a New Myrmecophilous Goblin Spider Genus (Araneae, Oonopidae) Associated with Asian Army Ants
FIGURES 1–2. 1, Sicariomorpha maschwitzi, comb. nov., participates in ant emigrations by performing a "tandem-running"-like behavior. 2, Participation of S. maschwitzi in host migrations. Leptogenys distinguenda workers heading toward the new nest were counted periodically for 90 sec, followed by a 90 sec break. Additionally, the presence of spiders was counted throughout the entire emigration.
Ineffectiveness of ants in the reproductive success of two sympatric myrmecophilous plants: the success of endophytic beetles
<p>Extrafloral nectaried plants attract ants, which may protect them against herbivory and increase plant fruit set production. In some cases, however, ants are ineffective against herbivores. Such events occur, for instance, when herbivores present adaptations to avoid ant predation. Thus, the outputs of these interactions depend on factors such as ant identity, plant phenology, and herbivore features. Here, we investigated the endophytic florivorous beetles’ impact on the reproductive success of their host plants, two sympatric <em>Banisteriopsis</em> (Malpighiaceae) species, depending on the action of EFNs visiting ants. We experimentally manipulated the presence of ants and herbivores on <em>B. malifolia</em> and <em>B. laevifolia</em> species during their reproductive period. We performed treatments where three similar inflorescences were selected to be (I) control branch, with no manipulations, (II) beetle-free branch, isolated with textile cover, and (III) ant-free branch, isolated at the base with atoxic wax. As a result, we observed (i) that florivorous <em>Anthonomus</em> beetles have a negative impact on <em>Banisteriopsis</em> reproductive success; (ii) ants fail in protecting plants against floral endophytic beetles; and (iii) most of the results were specie-specific. Our results indicate that these systems present very conditional outcomes that depend on THE intrinsic factors of each plant species.</p>
Sod translocation to restore habitats of the myrmecophilous butterfly Phengaris (Maculinea) teleius on former agricultural fields
<p>In Europe, 50-70% of former natural grassland area has been destroyed during the past 30 years due to land use changes, losses are expected to increase in the future. Restoration is thought to reverse this situation by creating suitable abiotic conditions. In this paper, we investigate the effects of sod translocation with specific vegetation to facilitate the restoration of a former intensive agricultural field into a wet meadow. First, starting conditions were optimized including modification of the local hydrology, removal of the fertilized topsoil, application of liming, and translocation of fresh clippings as a seed source. The second part aimed at restoring the habitat for the butterfly species <em>Phengaris (Maculinea) teleius</em>, one of the species that was especially affected by the loss of wet meadows. This species engages in a complex myrmecophilous relationship with one host plant, <em>Sanguisorba officinalis</em>, and one obligate host ant, <em>Myrmica scabrinodis</em>. We used sod translocation to create islands of habitat to promote host plant and host ant colonization. After four years following the restoration, we observed that plants spread from the transplanted sods to the surroundings. The vegetation composition and structure of the transplanted sods attracted colonization of <em>Myrmica </em>ants into the restored areas. Following the increase in vegetation cover and height, <em>Myrmica </em>ant colonies further spread into the restored areas. Therefore, sod translocations can be considered an effective restoration method following topsoil removal in the process of restoring wet meadows to provide a starting point for ant colonization and plant dispersion. With these findings, this paper contributes to the evidence-based restoration of wet meadows on former agricultural fields, including complex interactions between invertebrates and their required ecological relationships. </p>
Fig. 1 in New records of myrmecophilous beetle Paussus turcicus (Coleoptera, Carabidae) in Southeastern Balkans
Fig. 1.Paussus turcicuswith ant hostPheidole pallidula licking the glandular hairs.
Myrmecophilous Pselaphine beetles in tropical forests
<b>Description: </b><p>This data set includes taxanomic and abunance data for Pselaphinae beetles and ants collected in the leaf litter across Primary and logged forests sites. Selected environemntal variables (soil temperature, soil moisture and canopy cover) were also recorded at each sample site. </p><p><b>Project: </b>This dataset was collected as part of the following SAFE research project: <a href="https://www.safeproject.net/projects/project_view/46"><b>The Maliau Quantitative Inventory</b></a></p><p><b>XML metadata: </b>GEMINI compliant metadata for this dataset is available <a href="https://www.safeproject.net/datasets/xml_metadata?id=180">here</a></p><p><b>Files: </b>This consists of 1 file: Psomas_Ant_Pselaphine_SAFE_dataset.xlsx</p><p><b>Psomas_Ant_Pselaphine_SAFE_dataset.xlsx</b></p><p>This file contains dataset metadata and 4 data tables:</p><ol><li><p><b>EnvironVariables</b> (described in worksheet EnvironVariables)</p><p>Description: Environmental variables</p><p>Number of fields: 4</p><p>Number of data rows: 20</p><p>Fields: </p><ul><li><b>Site</b>: Site of measurements (Field type: Location)</li><li><b>Temp</b>: Soil temperature (Field type: Numeric)</li><li><b>Moisture</b>: Soil moisture (Field type: Numeric)</li><li><b>Cover</b>: Canopy cover (Field type: Numeric)</li></ul></li><li><p><b>Ant-Psel</b> (described in worksheet Ant-Psel)</p><p>Description: Ant-Pselaphine data</p><p>Number of fields: 3</p><p>Number of data rows: 20</p><p>Fields: </p><ul><li><b>Site</b>: Site where sample was collected (Field type: Location)</li><li><b>ant species richness</b>: Number of ant species in sample (Field type: Numeric)</li><li><b>ant abundance</b>: Total number of ants in sample (Field type: Abundance)</li></ul></li><li><p><b>MorphAbundance</b> (described in worksheet MorphAbundance)</p><p>Description: Morphospeices abundance</p><p>Number of fields: 43</p><p>Number of data rows: 20</p><p>Fields: </p><ul><li><b>Site</b>: Site where specimens were collected (Field type: Location)</li><li><b>Psel1</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel2</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel3</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel4</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel5</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel6</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel7</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel8</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel9</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel10</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel11</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel12</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel13</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel14</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel15</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel16</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel17</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel18</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel19</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel20</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel21</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel22</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel23</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel24</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel25</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel26</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel27</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel28</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel29</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel30</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel31</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel32</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel33</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel34</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel35</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel36</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel37</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel38</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel39</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel40</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel41</b>: Number of individuals collected (Field type: Abundance)</li><li><b>Psel42</b>: Number of individuals collected (Field type: Abundance)</li></ul></li><li><p><b>MorphFunctTraits</b> (described in worksheet MorphFunctTraits)</p><p>Description: Morphospecies_Functional Traits</p><p>Number of fields: 17</p><p>Number of data rows: 42</p><p>Fields: </p><ul><li><b>Morphospecies</b>: Morphospecies identity (Field type: Taxa)</li><li><b>AL</b>: Antennae length (Field type: Numeric Trait)</li><li><b>TAL</b>: Termianl antennomere length (Field type: Numeric Trait)</li><li><b>TAW</b>: Termianl antennomere width (Field type: Numeric Trait)</li><li><b>AN</b>: Antennomere number (Field type: Numeric Trait)</li><li><b>HCA</b>: Hollow cavity absent in terminal antennomere (Field type: Categorical Trait)</li><li><b>HCP</b>: Hollow cavity present in terminal antennomere (Field type: Categorical Trait)</li><li><b>TA</b>: Trichomes absent (Field type: Categorical Trait)</li><li><b>TP</b>: Trichomes present (Field type: Categorical Trait)</li><li><b>FP</b>: Foveae present (Field type: Categorical Trait)</li><li><b>FA</b>: Foveae absent (Field type: Categorical Trait)</li><li><b>Bef2</b>: Basal elytral foveae, two set (Field type: Categorical Trait)</li><li><b>Bef3</b>: Basal elytral fovea, thee set (Field type: Categorical Trait)</li><li><b>Bef1</b>: Basal elytral foveae, one set (Field type: Categorical Trait)</li><li><b>Bef0</b>: Basal elytral foveae, no set (Field type: Categorical Trait)</li><li><b>Bef4</b>: Basal elyral fovea, four set (Field type: Categorical Trait)</li><li><b>Myrmycophile</b>: Myrmecophily status (Field type: Categorical Trait)</li></ul></li></ol><p><b>Date range: </b>2012-09-01 to 2012-10-31</p><p><b>Latitudinal extent: </b>4.6922 to 4.9702</p><p><b>Longitudinal extent: </b>116.9669 to 117.7981</p><p><b>Taxonomic coverage: </b><br> All taxon names are validated against the GBIF backbone taxonomy. If a dataset uses a synonym, the accepted usage is shown followed by the dataset usage in brackets. Taxa that cannot be validated, including new species and other unknown taxa, morphospecies, functional groups and taxonomic levels not used in the GBIF backbone are shown in square brackets.</p><div>Animalia<br> - Arthropoda<br> -  - Insecta<br> -  -  - Coleoptera<br> -  -  -  - Pselaphidae<br> -  -  -  -  - [Psel1]<br> -  -  -  -  - [Psel10]<br> -  -  -  -  - [Psel15]<br> -  -  -  -  - [Psel17]<br> -  -  -  -  - [Psel28]<br> -  -  -  -  - [Psel29]<br> -  -  -  -  - [Psel30]<br> -  -  -  -  - [Psel33]<br> -  -  -  -  - [Psel35]<br> -  -  -  -  - [Psel41]<br> -  -  -  -  - [Psel9]<br> -  -  -  - Staphylinidae<br> -  -  -  -  - <i>Apharinodes</i><br> -  -  -  -  -  - [Psel13]<br> -  -  -  -  -  - [Psel37]<br> -  -  -  -  - <i>Aphilia</i><br> -  -  -  -  -  - [Psel12]<br> -  -  -  -  -  - [Psel38]<br> -  -  -  -  - <i>Batraxis</i><br> -  -  -  -  -  - [Psel31]<br> -  -  -  -  -  - [Psel39]<br> -  -  -  -  - <i>Bibloporus</i><br> -  -  -  -  -  - [Psel2]<br> -  -  -  -  - <i>Cerylambus</i><br> -  -  -  -  -  - [Psel27]<br> -  -  -  -  - <i>Cratna</i><br> -  -  -  -  -  - [Psel16]<br> -  -  -  -  -  - [Psel19]<br> -  -  -  -  -  - [Psel32]<br> -  -  -  -  - <i>Curculionellus</i><br> -  -  -  -  -  - [Psel26]<br> -  -  -  -  - <i>Diaugis</i><br> -  -  -  -  -  - [Psel42]<br> -  -  -  -  - <i>Enantius</i><br> -  -  -  -  -  - [Psel36]<br> -  -  -  -  - <i>Harmophorus</i><br> -  -  -  -  -  - [Psel4]<br> -  -  -  -  - <i>Mechanicus</i><br> -  -  -  -  -  - [Psel14]<br> -  -  -  -  -  - [Psel34]<br> -  -  -  -  -  - [Psel40]<br> -  -  -  -  -  - [Psel7]<br> -  -  -  -  - <i>Mnia</i><br> -  -  -  -  -  - [Psel11]<br> -  -  -  -  -  - [Psel18]<br> -  -  -  -  - <i>Plagiophorus</i><br> -  -  -  -  -  - [Psel20]<br> -  -  -  -  -  - [Psel22]<br> -  -  -  -  -  - [Psel3]<br> -  -  -  -  -  - [Psel6]<br> -  -  -  -  -  - [Psel8]<br> -  -  -  -  - <i>Pselaphodes</i><br> -  -  -  -  -  - [Psel21]<br> -  -  -  -  -  - [Psel25]<br> -  -  -  -  - <i>Pseudacerus</i><br> -  -  -  -  -  - [Psel23]<br> -  -  -  -  - <i>Pseudophanias</i><br> -  -  -  -  -  - [Psel5]<br> -  -  -  -  - <i>Sathytes</i><br> -  -  -  -  -  - [Psel24]<br> -  -  - Hymenoptera<br> -  -  -  - Formicidae<br></div><p></p>
Figure 3 in Transfer of the myrmecophilous soft scale insect Neolecanium amazonensis Foldi to Foldilecanium gen. nov. (Hemiptera: Coccidae), with description of a new species from Colombia.
Figure 3. Foldilecanium multisetosus Kondo, adult female.
Figure 1 in Transfer of the myrmecophilous soft scale insect Neolecanium amazonensis Foldi to Foldilecanium gen. nov. (Hemiptera: Coccidae), with description of a new species from Colombia.
Figure 1. Foldilecanium amazonensis (Foldi), adult female.
Fig. 1 in Contribution to the knowledge of myrmecophilous beetles (Insecta, Coleoptera) of Latvia
Fig. 1: Collection localities of myrmecophilous beetles in Latvia.
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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.