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Data from: A novel experimental approach for studying life-history traits of phytophagous arthropods utilizing an artificial culture medium
<p><strong>Filename: Developmental.xlsx</strong></p> <p>Variables:</p> <p>1. id_spec - specimen ID<br> 2. temp - temperature of incubation<br> 3. larv - number of days needed to reach larva stage <br> 4. i_larv - number of days needed to reach immobile larva stage <br> 5. nymph - number of days needed to reach nymph stage <br> 6. i_nymph - number of days needed to reach immobile nymph stage <br> 7. adult - number of days needed to reach adult stage <br> 8. egg - number of days needed to oviposit egg of next generation </p> <p><strong>Filename: Methods_comparison.xlsx</strong></p> <p>Variables:</p> <p>1. species (E - <em>Aceria tosichella</em>; T - <em>Tetranychus urticae</em>)<br> 2. variant - applied method: S - standard method (rearing cages for <em>Aceria tosichella</em>; cotton for <em>Tetranychus urticae</em>) N - new method (MIVM rearing for both species)<br> 3. t.trans - time needed to transfer 10 specimens to arena [min]<br> 4. n.24 aa - number of specimens alive within arena after 24 hours<br> 5. n.24 ad - number of specimens dead within arena after 24 hours<br> 6. n.24 oa - number of specimens alive out of the arena after 24 hours<br> 7. n.24 od - number of specimens dead out of the arena after 24 hours<br> 8. t.24 - time needed to check the arena after 24 hours [min]</p> <p><strong>Filename: Survival.xlsx</strong></p> <p>Variables:</p> <p>1. id_spec - specimen ID<br> 2. temp - temperature of incubation<br> 3. time - numbers of days when individual was observed alive<br> 4. stage - developmental stage which individual reached before death<br> 5. status - 0 - censored observation; 1 - observed event of death </p>
Figure 3 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 3. In situ photographs of Apterodela spp. A) Apterodela ovipennis (Asia). B) Apterodela unipunctata (North America).
Figure 2 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 2. Representative dorsal habitus of Parvindela new genus. A) Parvindela debilis (type species. B) Parvindela terricola. C) Parvindela celeripes.
Figure 1 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 1. Maximum-likelihood phylogenetic hypothesis for North American lineages Ellipsoptera, Dromochorus, Brasiella, and Cylindera. Maximum-likelihood phylogeny inferred in IQ-TREE based on three mitochondrial fragments (16S, COX3 and CytB). Taxon naming follows previous naming conventions with different colors highlighting new generic groupings we propose. * denotes the C. lemniscata specimen from GenBank and † denotes the chimera specimen.
Figure 3 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 3. In situ photographs of Apterodela spp. A) Apterodela ovipennis (Asia). B) Apterodela unipunctata (North America).
Figure 2 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 2. Representative dorsal habitus of Parvindela new genus. A) Parvindela debilis (type species. B) Parvindela terricola. C) Parvindela celeripes.
Figure 1 in Unifying systematics and taxonomy: Nomenclatural changes to Nearctic tiger beetles (Coleoptera: Carabidae: Cicindelinae) based on phylogenetics, morphology and life history
Figure 1. Maximum-likelihood phylogenetic hypothesis for North American lineages Ellipsoptera, Dromochorus, Brasiella, and Cylindera. Maximum-likelihood phylogeny inferred in IQ-TREE based on three mitochondrial fragments (16S, COX3 and CytB). Taxon naming follows previous naming conventions with different colors highlighting new generic groupings we propose. * denotes the C. lemniscata specimen from GenBank and † denotes the chimera specimen.
FIGURES 23–25 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 23–25. Male pupa of Mecynodera balyi Clark, 1864. 23, chaetotaxy of head; 24, oblique lateral view of left antenna and anterior and middle leg thecae, showing chaetotaxy; 25, ventral, detail of abdominal apex.
FIGURES 17–18 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 17–18. Late instar larva of Mecynodera balyi Clark, 1864. 17, prothoracic leg; 18, abdominal segments IX & X in apical view, showing anus.
FIGURE 2 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURE 2. Mature and maturing Pandorea pandorana pods, Helensburgh, NSW, xi.2017. Arrows show exit holes.
FIGURES 7–9 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 7–9. Late instar larva of Mecynodera balyi Clark, 1864. 7, lateral; 8, ventral; 9, oblique view of head capsule.
FIGURE 10. Mecynodera balyi Clark, 1864 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURE 10. Mecynodera balyi Clark, 1864: dissected head capsule late instar larva, dorsal and ventral view, with thoracic integument and labiomaxillary complex removed.
FIGURES 3–6 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 3–6. Pandorea pandorana pods: 3, unopened, with exit holes; 4, opened, with chewed contents, Helensburgh, NSW, xi.2017. 5–6, Pandorea pandorana pods opened, with small early instar larvae of Mecynodera balyi Clark, 1864, Helensburgh, NSW, xi.2017.
FIGURE 1. Male Mecynodera balyi Clark, 1864 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURE 1. Male Mecynodera balyi Clark, 1864 on Pandorea pandorana leaf, Helensburgh, NSW, October 2018.
FIGURES 13–16. Mecynodera balyi Clark, 1864. 13 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 13–16. Mecynodera balyi Clark, 1864. 13, shed cuticle of last instar larval head capsule, showing stemmata; 14, dried head capsule late instar larva, apicodorsal; 15—16, late instar larva, labiomaxillary complex, external and internal views.
FIGURES 11–12 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 11–12. Late instar larva of Mecynodera balyi Clark, 1864. 11, chaetotaxy of head; 12, epipharynx.
FIGURES 21–22 in Descriptions of the larva and pupa of Mecynodera balyi Clark, 1864, with notes on its life history (Coleoptera: Chrysomelidae: Sagrinae)
FIGURES 21–22. Male pupa of Mecynodera balyi Clark, 1864. 21, dorsal, detail of thoracic segments; 22, chaetotaxy of thoracic dorsum.
Fig. 1 in Life history of the ground beetle Diacheila polita (Faldermann, 1835) (Coleoptera: Carabidae) in Subarctic and Arctic of North Europe and West Siberia
Fig. 1. Sex and age structure of the population of D. polita according to collecting by pitfall traps on Kolguyev Island in 2009. Рис. 1. Поло-воЗрастнаЯ структура популЯции D. polita по данным учётов почвенными ловуШками на о-ве Колгуев в 2009 г.
FIG. 3 in Otolith Microstructure Analysis Elucidates Spawning and Early Life Histories of Federally Endangered Fishes in the San Juan River
FIG. 3. Razorback Sucker age as a function of length (SL). Colored dots indicate otolith ages, and black squares are predicted ages produced from the linear growth function.
FIG. 1. Colorado Pikeminnow and Razorback Sucker larvae for this study were selected from 2009 in Otolith Microstructure Analysis Elucidates Spawning and Early Life Histories of Federally Endangered Fishes in the San Juan River
FIG. 1. Colorado Pikeminnow and Razorback Sucker larvae for this study were selected from 2009 to 2017 larval fish collections made in the San Juan River between reach 6, near Farmington, NM, and reach 1, near the terminus of the San Juan River in Lake Powell.
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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)
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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.