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37 results for “carpenter ants”
Figure 9 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 9 - Camponotus imitator minor worker CASENT0452849. A Lateral view B Head in full-face view C Dorsal view.
Figure 13 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 13 - Camponotus karaha minor worker CASENT0067555. A Lateral view B Head in full-face view C Dorsal view.
Figure 16 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 16 - Camponotus longicollis minor worker CASENT0191989. A Lateral view B Head in full-face view C Dorsal view.
Figure 12 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 12 - Camponotus jodina minor worker CASENT0152090. A Lateral view B Head in full-face view C Dorsal view.
Figure 3 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 3 - Dendrogram solution for the Malagasy Myrmopytia based on morphometric data. Labels include final species hypothesis followed by collection code separated by a hyphen. The color bars show partitioning yielded by two cluster methods 'hclust' and 'kmeans' via method PART. Color code: Camponotus imitator: black (cluster 1), C. jodina: purple (cluster 2), C. karaha: red (cluster 2), C. longicollis: blue (cluster 3)
Figure 2 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 2 - Illustrations of measurements used to distinguish members of Myrmopytia. A Full-face view of the head illustrating measurement lines for maximum cephalic length (CL), clypeal length (ClyL), maximum cephalic width (CW), maximum head capsule width (CWb), eye length (EL), frontal carina distance (FR), maximum tentorial pit distance (GPD), postocular distance (PoOC), preocular distance (PrOC) and torular carina distance (TCD) B Lateral view of the body illustrating measurement lines for oculo-mandibular distance (OMD), scape length (SL), mesosoma length (ML), mesothoracico-propodeal height (MPH), petiolar node height (NOH) and maximum hind tibia length (HTL) C Dorsal view of the body illustrating measurement lines for mesosoma width (MW), mesothoracico-propodeal distance (MPD) and petiolar width (PEW).
Data from: Pheromone-induced accuracy of nestmate recognition in carpenter ants: simultaneous decrease of Type I and Type II errors
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Foraging and spatial ecology of a polydomous carpenter ant (Camponotus leydigi) in tropical cerrado savanna: A natural history account
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A chromatin link to caste identity in the carpenter ant Camponotus floridanus
GEO Series GSE37523. Camponotus floridanus. 45 samples. Type: Expression profiling by high throughput sequencing; Genome binding/occupancy profiling by high throughput sequencing.
Figure 11 from: Rasoamanana N, Csosz S, Fisher BL (2017) Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits. ZooKeys 681: 119-152. https://doi.org/10.3897/zookeys.681.13187
Figure 11 - Camponotus imitator is sympatric with A. swammerdami through most of its range.
Data from: Taxonomic revision of imitating carpenter ants, Camponotus subgenus Myrmopytia (Hymenoptera, Formicidae) of Madagascar, using morphometry and qualitative traits
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Epigenetic changes and an extensive rewiring of the transcriptome underlie worker size distribution in the Florida carpenter ant [RNA-seq]
GEO Series GSE239921. Camponotus floridanus. 48 samples. Type: Expression profiling by high throughput sequencing.
Epigenetic changes and an extensive rewiring of the transcriptome underlie worker size distribution in the Florida carpenter ant [miRNA-seq]
GEO Series GSE239978. Camponotus floridanus. 24 samples. Type: Non-coding RNA profiling by high throughput sequencing.
Epigenetic changes and an extensive rewiring of the transcriptome underlie worker size distribution in the Florida carpenter ant
GEO Series GSE239979. Camponotus floridanus. 174 samples. Type: Expression profiling by high throughput sequencing; Methylation profiling by high throughput sequencing; Non-coding RNA profiling by high throughput sequencing.
Epigenetic changes and an extensive rewiring of the transcriptome underlie worker size distribution in the Florida carpenter ant [EM-seq]
GEO Series GSE239902. Camponotus floridanus. 48 samples. Type: Methylation profiling by high throughput sequencing.
Epigenetic changes and an extensive rewiring of the transcriptome underlie worker size distribution in the Florida carpenter ant [BiSulfite-seq]
GEO Series GSE239924. Camponotus floridanus. 54 samples. Type: Methylation profiling by high throughput sequencing.
Foraging and spatial ecology in a competitive environment: Polydomous carpenter ants (Camponotus leydigi) in a tropical savanna
<p>Carpenter ants (genus <i>Camponotus</i>) are considered to be predominantly omnivorous, mixing several feeding habits that include predation, scavenging of animal matter, and plant-derived resources. Nitrogen acquisition is crucial for the nutritional ecology of ant colonies since growing larvae require sustainable protein provisioning. Here, we investigate the foraging ecology and the spatial nesting structure of the carpenter ant <i>Camponotus leydigi</i> in Brazilian cerrado savanna. By marking workers from different nests with distinct colors, we revealed that <i>C. leydigi</i> occupies physically separated but socially connected nests (up to 30 m apart), a phenomenon known as polydomy. Data on internest movements in <i>C. leydigi</i> corroborate cooperative exchanges between nest units and confirm several types of social connections, including internest transfer of liquid and solid food, transport of colony members (brood, workers), movement of solitary workers, and internest recruitment. Polydomous <i>C. leydigi</i> allocate foragers throughout 1,700 m<sup>2</sup>, feeding mostly on termites and plant-derived exudates. Influx of exudates is threefold higher compared to solid food. Uric acid pellets excreted by lizards comprise 20% of the solid diet in <i>C. leydigi</i>, a first quantitative assessment of this peculiar type of nitrogen complementation in ants. We hypothesize that nest decentralization in <i>C. leydigi</i> may reduce foraging constraints caused by overt interference by its main competitor, the aggressive ant <i>Ectatomma brunneum</i> that regularly blocks nest entrances. Our field study enhances the importance of natural history data to clarify selective pressures underlying the evolution of particular behavioral patterns (nutritional and nesting habits) in social insects.</p>
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Allen Brain Atlas
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DANDI Archive for NWB datasets
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International Brain Laboratory public data
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OpenNeuro
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