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435 results for “myrmecophilous”
Fig. 6 in The coccid-tending ant genus Acropyga Roger and its obligate associated myrmecophilous scale insect genus Eumyrmococcus Silvestri new to Italy (Hymenoptera: Formicidae; Hemiptera: Xenococcidae)
Fig. 6 – Acropyga paleartica, male: head, frontal view (Scale bar: 0.5 mm).
Fig. 5 in The coccid-tending ant genus Acropyga Roger and its obligate associated myrmecophilous scale insect genus Eumyrmococcus Silvestri new to Italy (Hymenoptera: Formicidae; Hemiptera: Xenococcidae)
Fig. 5 – Acropyga paleartica, male: body, lateral view (Scale bar: 1 mm).
Fig. 3 in The coccid-tending ant genus Acropyga Roger and its obligate associated myrmecophilous scale insect genus Eumyrmococcus Silvestri new to Italy (Hymenoptera: Formicidae; Hemiptera: Xenococcidae)
Fig. 3 – Acropyga paleartica, gyne: body, lateral view (Scale bar: 1 mm).
Fig. 2 in The coccid-tending ant genus Acropyga Roger and its obligate associated myrmecophilous scale insect genus Eumyrmococcus Silvestri new to Italy (Hymenoptera: Formicidae; Hemiptera: Xenococcidae)
Fig. 2 – Acropyga paleartica, known distribution.
Fig. 1 in The coccid-tending ant genus Acropyga Roger and its obligate associated myrmecophilous scale insect genus Eumyrmococcus Silvestri new to Italy (Hymenoptera: Formicidae; Hemiptera: Xenococcidae)
Fig. 1 – An Acropyga paleartica gyne carring one Eumyrmococcus corynthiacus female.
Sod translocation to restore habitats of the myrmecophilous butterfly Phengaris (Maculinea) teleius on former agricultural fields
Open the record for dataset details and reuse information.
FIGURE 3 in Tibetyrus gen. nov., a new myrmecophilous Tyrini from Xizang, China (Coleoptera: Staphylinidae: Pselaphinae)
FIGURE 3. Host ant (A, B) and collection environment (C, D) of Tibetyrus formicarius. A. Habitus, lateral. B. Head, in fullface view. C, D. Jiarelongba Valley, where the ant nests were found under stones beside the pass.
FIGURE 2. Tibetyrus formicarius, male. A in Tibetyrus gen. nov., a new myrmecophilous Tyrini from Xizang, China (Coleoptera: Staphylinidae: Pselaphinae)
FIGURE 2. Tibetyrus formicarius, male. A. Head, pronotum, and elytral base. B. Meso- and metaventrite. C. Sternite 7 (IX). D–F. Aedeagus, in dorsal (D), lateral (E), and ventral (F) view. Scale bars: 0.5 mm in A, B; 0.1 mm in C; 0.2 mm in D–F.
FIGURE 1 in Tibetyrus gen. nov., a new myrmecophilous Tyrini from Xizang, China (Coleoptera: Staphylinidae: Pselaphinae)
FIGURE 1. Tibetyrus formicarius (A–C. Male. D. Female). A. Habitus. B. Right maxillary palpus. C, D. Antennomeres 9–11. Scale bars: 1.0 mm in A; 0.2 mm in B; 0.5 mm in C, D.
FIGURE 7 in Comparative morphology of myrmecophilous immature stages of European Microdon species (Diptera: Syrphidae): updated identification key and new diagnostic characters
FIGURE 7. Dorsal reticulation of third instar larvae of M. myrmicae (A, B), M. analis (C, D) and M. devius (E, F); left, general view; right, detail of single reticulation processes. A = 400 µm; B = 50 µm; C, E = 500 µm; D = 100 µm; F = 200 µm.
Data from: Resource overlap and dilution effects shape host plant use in a myrmecophilous butterfly
1. The effects of consumers on fitness of resource organisms are a complex function of the spatio-temporal distribution of the resources, consumer functional responses and trait preferences, and availability of other resources. 2. The ubiquitous variation in the intensity of species interactions has important consequences for the ecological and evolutionary dynamics of natural populations. Nevertheless, little is known about the processes causing this variation and their operational scales. Here, we examine how variation in the intensity of a consumer-resource interaction is related to resource timing, resource density and abundance of other resources. 3. Using the butterfly consumer Phengaris alcon and its two sequential resources, the host plant Gentiana pneumonanthe and the host ants Myrmica spp., we investigated how butterfly egg-laying depended on focal host plant phenology, density and phenology of neighboring host plants and host ant abundance. 4. Butterflies preferred plants that simultaneously maximized the availability of both larval resources in time and space, i.e., they chose early-flowering plants that were of higher nutritional quality for larvae where host ants were abundant. Both the probability of oviposition and the number of eggs were lower in plant individuals with a high neighbor density than in more isolated plants, and this dilution effect was stronger when neighbors flowered early. 5. Our results show that plant-herbivore interactions simultaneously depend on the spatio-temporal distribution of a focal resource, and on the small-scale spatial variation in the abundance of other herbivore resources. Given that consumers have negative effects on fitness and prefer certain timing of the resource organisms, this implies that processes acting at the levels of individuals, populations and communities simultaneously contribute to variation in consumer-mediated natural selection.
FIGURES 33 in A revision of the myrmecophilous genus Smilax Laporte (Coleoptera: Staphylinidae: Staphylininae)
FIGURES 33. Distribution map of S. deneinephyto Chatzimanolis, S. kuntzeni (Scheerpeltz) and S. lynchi (Bruch).
FIGURES 26–28 in A revision of the myrmecophilous genus Smilax Laporte (Coleoptera: Staphylinidae: Staphylininae)
FIGURES 26–28. Aedeagus of S. kuntzeni (Scheerpeltz). 26. Lateral view. 27. Dorsal view. 28. Detail of paramere, ventral view.
FIGURES 1–2 in A revision of the myrmecophilous genus Smilax Laporte (Coleoptera: Staphylinidae: Staphylininae)
FIGURES 1–2. Habitus photographs of Smilax Laporte. 1. Smilax deneinephyto Chatzimanolis, total length = 18.5 mm. 2. Smilax pilosa (F.), total length = 16.6 mm.
FIGURE 5 in Taxonomy of the myrmecophilous genus Lomechusa (Coleoptera: Staphylinidae: Aleocharinae: Lomechusini) from China
FIGURE 5. Details of Lomechusa elegans (female). a—tergite VIII; b—sternite VIII; c—tergites IX–X; d—spermatheca; e—antennae (soft hairs omitted). Scale: a–c, 0.2 mm; d, 0.1 mm; e, 0.5 mm.
FIGURE 1 in Taxonomy of the myrmecophilous genus Lomechusa (Coleoptera: Staphylinidae: Aleocharinae: Lomechusini) from China
FIGURE 1. Details of Lomechusa parva. a—tergite VIII; b—sternite VIII; c—medial lobe of aedeagus in lateral view; d—tergites IX–X; e—medial lobe of aedeagus in dorsal view; f—pronotum (microsculpture omitted); g—antennae (soft hairs omitted). Scale: a–d, 0.2 mm; e, 0.125 mm; f, g, 0.5 mm.
FIGURE 2 in Taxonomy of the myrmecophilous genus Lomechusa (Coleoptera: Staphylinidae: Aleocharinae: Lomechusini) from China
FIGURE 2. Details of Lomechusa brevicornis. a—tergite VIII; b—pronotum (microsculpture omitted); c—spermatheca; d—tergites IX–X; e—sternite VIII; f—antennae (soft hairs omitted). Scale: a, 0.3 mm; b, f, 0.5 mm; c, 0.1 mm; d, 0.2mm; e, 0.25mm.
FIGURE 4 in Taxonomy of the myrmecophilous genus Lomechusa (Coleoptera: Staphylinidae: Aleocharinae: Lomechusini) from China
FIGURE 4. Details of Lomechusa elegans (male). a—tergite VIII; b—tergites IX–X; c—medial lobe of aedeagus in lateral view; d—pronotum (microsculpture omitted); e—medial lobe of aedeagus in dorsal view; f—sternite VIII. Scale: a, f, 0.25 mm; b, c, 0.2 mm; d, 0.5mm; e, 0.125mm.
FIGURE 25 in Fine morphology of the myrmecophilous larva of Paussus kannegieteri (Coleoptera: Carabidae: Paussinae: Paussini)
FIGURE 25. Morphology of representative larval terminal disk and relationships of Paussinae (based on current knowledge of adult and larval structural characters).
FIGURES 3–6 in Fine morphology of the myrmecophilous larva of Paussus kannegieteri (Coleoptera: Carabidae: Paussinae: Paussini)
FIGURES 3–6. Paussus kannegieteri third instar larva: 3, head, dorsal view; 4, head, ventral view; 5, head, frontal view; 6 head, left lateral view. FR = frontoclypeolabrale, PA = parietal plate. Scale bars: 3–6 = 200 µm.
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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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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.