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213 results for “seed beetles”
FIGS 334 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 334± 340. A. fugitus male terminalia: (334) tergite 7, dorsal; (335) tergum 8 and sternum 8, ventral; (336) tegmen, dorsal; (337) tegmen, lateral; (338) aedeagus, dorsal; (339) aedeagus, lateral; (340) aedeagal apex, dorsal. Scale bar 5 0.1 mm; (334, 335) to same scale; (336±340) to same scale.
FIGS 341 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 341±345. A. fugitus female terminalia: (341) tergite 7, dorsal; (342) tergite 8, dorsal; (343) spiculum ventrale, dorsal; (344) genitalia, lateral; (345) hemisternites of ovipositor, dorsal. Scale: (345) scale bar 5 0.1 mm; (341±344) scale bar 5 0.5 mm; (342±343) to same scale.
FIGS 321 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 321±326. A. confusus male terminalia: (321) tergite 7, dorsal; (322) tegmen, dorsal; (323) tegmen, lateral; (324) aedeagus, dorsal; (325) aedeagal apex, dorsal; (326) aedeagus, lateral. Scale bar 5 0.5 mm; all to same scale.
FIGS 9 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 9±10. Alcidodes hoplomachu s, fore tibia, anterior aspect: (9) female; (10) male. Key: pmÐpre-mucro; mÐmucro; ttÐventral tibial tooth. Scale bar 5 1 mm.
FIG 5 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIG 5. Alcidodes humeralis. Dorsal, showing measurements taken. HWÐhumeral width; PWÐpronotal width; LÐlength; EL Ðelytral length (cf. ®gure 6).
FIGS 3 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 3±4. Alcidodes humeralis, abdomen, dorsal: (3) male; (4) female. Key: t6Ðtergite 6; t7Ðtergite 7; t8 Ðtergite 8; wÐwing-binding patch.
FIGS 448 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 448± 452. A. vaticus female terminalia: (448) tergite 7, dorsal; (449) tergite 8, dorsal; (450) spiculum ventrale, dorsal; (451) ovipositor, lateral; (452) hemisternites, dorsal. Scale bars 5 0.5 mm: (448±450) to same scale; (451, 452) diOEerent scales.
FIGS 434 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 434±439. A. curvirostris female terminalia: (434) tergite 7, dorsal; (435) tergite 8, dorsal; (436) spiculum ventrale, dorsal; (437) hemisternites of ovipositor, dorsal; (438) hemisternites, lateral; (439) spermatheca. Scale bars 5 0.5 mm: (434±435) to same scale; (436±439) to same scale.
FIGS 426 in Seed-feeding beetles of the weevil tribe Mecysolobini (Insecta: Coleoptera: Curculionidae) developing in seeds of trees in the Dipterocarpaceae
FIGS 426±433. A. curvirostris male terminalia: (426) tergite 7, dorsal; (427) tergum 8 and sternum 8, ventral; (428) spiculum gastrale, dorsal; (429) tegmen, dorsal (slightly distorted during preparation); (430) tegmen, lateral; (431) aedeagus, dorsal; (432) aedeagal apex, apical view, the apex of the aedeagus being at the top of the ®gure, the dorsal surface of the aedeagus at the bottom; (433) aedeagus, lateral. Scale bars 5 0.5 mm; (426±427) to same scale; (428±433) to same scale.
Supplementary material 1 from: Demetriou J, Kakiopoulos G, Háva J, Martinou AF, Delobel A (2022) First record of the alien seed beetle Stator limbatus (Coleoptera, Chrysomelidae, Bruchinae) from Cyprus. Travaux du Muséum National d'Histoire Naturelle "Grigore Antipa" 65(1): 37-43. https://doi.org/10.3897/travaux.65.e81350
Supplementary material 1 from: Demetriou J, Kakiopoulos G, Háva J, Martinou AF, Delobel A (2022) First record of the alien seed beetle Stator limbatus (Coleoptera, Chrysomelidae, Bruchinae) from Cyprus. Travaux du Muséum National d'Histoire Naturelle "Grigore Antipa" 65(1): 37-43. https://doi.org/10.3897/travaux.65.e81350
Data from: Males evolve to be more harmful under increased sexual conflict intensity in a seed beetle
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Top-down cascading effects of seed-feeding beetles and their parasitoids on plants and leaf herbivores
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Data from: Intralocus sexual conflict and the tragedy of the commons in seed beetles
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Data from: The value of trophic interactions for ecosystem function: dung beetle communities influence seed burial and seedling recruitment in tropical forests
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Data from: Dung beetle activity affects rainforest seed bank dynamics and seedling establishment
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Data from: Condition dependence of male and female genital structures in the seed beetle Callosobruchus maculatus (Coleoptera: Bruchidae)
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Enhancing the usefulness of artificial seeds in seed beetle model systems research
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Inbreeding reduces fitness of seed beetles under thermal stress
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Data from: No support for the sexy‐sperm hypothesis in the seed beetle: sons of monandrous females fare better in post‐copulatory competition
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Inferring quantitative species interactions of seeds and seed-feeding carabid beetles from ecological survey data
<p>Here, we develop a trait-based approach suitable for creating quantitative networks, i.e. with varying interaction strengths. We applied this method to existing ecological survey data from an arable field of carabid ground beetles (Coleoptera: Carabidae) from pitfall traps and plant seeds from seed rain traps. We used existing data in the literature to predict a per-individual interaction cost index from carabid and seed size, based on frequency-dependent prey selection and the energetic intake of seeds by carabids. This was scaled up to the population level to create predicted inferred weighted networks using the sampled abundance of carabids and seeds, energetic intake rates in the literature, and assuming bottom up control. From this we calculated a novel predation pressure ratio which was the predicted seed predation (the sum of interaction strengths) relative to seed abundance.</p> <p>This is made available as an R markdown file with associated data files.</p>
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