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183 results for “exotic species”
Figure 5 in You are what you eat: native versus exotic Crotalaria species (Fabaceae) as host plants of the Ornate Bella Moth, Utetheisa ornatrix (Lepidoptera: Erebidae: Arctiinae)
Figure 5. Utetheisa ornatrix raised on leaves versus beans of two Crotalaria species: (A) rates of development of the last instar raised on beans versus leaves of C. lanceolata; (B) rates of larval development on beans versus leaves of C. pallida; (C) pupal weight of moths raised on beans versus leaves of C. pallida. (B and C – based on data from Ferro et al. 2006).
Figure 4 from: Casiraghi A, Espadaler X, Pérez Hidalgo N, Gómez K (2020) Two additions to the Iberian myrmecofauna: Crematogaster inermis Mayr, 1862, a newly established, tree-nesting species, and Trichomyrmex mayri (Forel, 1902), an emerging exotic species temporarily nesting in Spain (Hymenoptera, Formicidae). Journal of Hymenoptera Research 78: 57-68. https://doi.org/10.3897/jhr.78.51858
Figure 4 Crematogaster inermis. Worker head in frontal view, with abraded mandible denticles. (HW 1.125 mm) (Image X. Espadaler).
Figure 1 from: Casiraghi A, Espadaler X, Pérez Hidalgo N, Gómez K (2020) Two additions to the Iberian myrmecofauna: Crematogaster inermis Mayr, 1862, a newly established, tree-nesting species, and Trichomyrmex mayri (Forel, 1902), an emerging exotic species temporarily nesting in Spain (Hymenoptera, Formicidae). Journal of Hymenoptera Research 78: 57-68. https://doi.org/10.3897/jhr.78.51858
Figure 1 Robinia pseudoacacia tree (black locust) where Crematogaster inermis were nesting (Valencia, Spain). Black arrow indicates the level of nest entrance (Image X. Espadaler).
Figure 2 from: Casiraghi A, Espadaler X, Pérez Hidalgo N, Gómez K (2020) Two additions to the Iberian myrmecofauna: Crematogaster inermis Mayr, 1862, a newly established, tree-nesting species, and Trichomyrmex mayri (Forel, 1902), an emerging exotic species temporarily nesting in Spain (Hymenoptera, Formicidae). Journal of Hymenoptera Research 78: 57-68. https://doi.org/10.3897/jhr.78.51858
Figure 2 Partial view (16 July 2016) of an abandoned date palm grove (Agost, Alicante, Spain) where Crematogaster inermis, Trichomyrmex destructor and T. mayri had been temporary nesting in July 2007 (Image X. Roig).
Figure 3 from: Casiraghi A, Espadaler X, Pérez Hidalgo N, Gómez K (2020) Two additions to the Iberian myrmecofauna: Crematogaster inermis Mayr, 1862, a newly established, tree-nesting species, and Trichomyrmex mayri (Forel, 1902), an emerging exotic species temporarily nesting in Spain (Hymenoptera, Formicidae). Journal of Hymenoptera Research 78: 57-68. https://doi.org/10.3897/jhr.78.51858
Figure 3 Crematogaster inermis, mesosoma lateral view. Bar 0.4 mm. A small specimen (HW 1.050 mm) showing small, but visible, triangular propodeal spines B medium sized specimen (HW 1.150 mm), with merely angulate propodeum C bigger specimen (HW 1.175 mm), with rounded propodeum (Images X. Espadaler).
Figure 6 from: Żurawlew P, Desutter-Grandcolas L, Szymański P, Herman DB (2020) New records of exotic crickets in Europe: Homoeogryllus species (Orthoptera: Gryllidea: Phalangopsidae). Journal of Orthoptera Research 29(2): 121-125. https://doi.org/10.3897/jor.29.50387
Figure 6 Stridulation of Homoeogryllus xanthographus (Guérin-Méneville, 1847), male observed in Gołuchów, Pleszew District (Poland): a. spectrogram of recorded stridulation series; b. spectrogram of one stridulation series in higher resolution of time domain; c. spectrogram of two type units (syllables). The oscillograms are shown below and the relative amplitude scales (in dB) on the right of the spectrograms. Abbreviations: dB, decibel; s, second; kHz, kilohertz.
Figure 5 from: Żurawlew P, Desutter-Grandcolas L, Szymański P, Herman DB (2020) New records of exotic crickets in Europe: Homoeogryllus species (Orthoptera: Gryllidea: Phalangopsidae). Journal of Orthoptera Research 29(2): 121-125. https://doi.org/10.3897/jor.29.50387
Figure 5 Homoeogryllus xanthographus (Guérin-Méneville, 1847) male observed in Gołuchów, Pleszew District (Poland).
Figure 4 from: Żurawlew P, Desutter-Grandcolas L, Szymański P, Herman DB (2020) New records of exotic crickets in Europe: Homoeogryllus species (Orthoptera: Gryllidea: Phalangopsidae). Journal of Orthoptera Research 29(2): 121-125. https://doi.org/10.3897/jor.29.50387
Figure 4 Stridulation of Homoeogryllus tessellatus (Serville, 1838) male from Warsaw (Poland): a. spectrogram of recorded stridulation; b. spectrogram of one stridulation series in higher resolution of time domain; c. spectrogram of the beginning of stridulation series with three units (syllables) shown. The oscillograms are shown below and the relative amplitude scales (in dB) on the right of the spectrograms. Abbreviations: dB, decibel; s, second; kHz, kilohertz.
Figure 2 from: Żurawlew P, Desutter-Grandcolas L, Szymański P, Herman DB (2020) New records of exotic crickets in Europe: Homoeogryllus species (Orthoptera: Gryllidea: Phalangopsidae). Journal of Orthoptera Research 29(2): 121-125. https://doi.org/10.3897/jor.29.50387
Figure 2 Stridulation of Homoeogryllus cf. reticulatus (Fabricius, 1781) male from Gent (Belgium): a. spectrogram of two recorded stridulation series; b. spectrogram of one stridulation series in higher resolution of time domain; c. spectrogram of the beginning of stridulation series with three units (syllables) shown. The oscillograms are shown below and the relative amplitude scales (in dB) on the right of the spectrograms. Abbreviations: dB, decibel; s, second; kHz, kilohertz.
Figure 1 from: Żurawlew P, Desutter-Grandcolas L, Szymański P, Herman DB (2020) New records of exotic crickets in Europe: Homoeogryllus species (Orthoptera: Gryllidea: Phalangopsidae). Journal of Orthoptera Research 29(2): 121-125. https://doi.org/10.3897/jor.29.50387
Figure 1 Homoeogryllus cf. reticulatus (Fabricius, 1781). Male found in a crack of a wall near the port of Gent (Belgium) in which wood of tropical trees is stored.
Data from: Enhancing gardens as habitats for flower-visiting aerial insects (pollinators): should we plant native or exotic species?
1. Domestic gardens typically consist of a mixture of native and non-native plants which support biodiversity and provide valuable ecosystem services, particularly in urban environments. Many gardeners wish to encourage biodiversity by choosing appropriate plant taxa. The value of native and non-native plants in supporting animal biodiversity is, however, largely unknown. 2. The relative value of native and non-native garden plants to invertebrates was investigated in a replicated field experiment. Plots (deliberately akin to garden borders) were planted with one of three treatments, representing assemblages of plants based on origin (native, near-native and exotic). Invertebrates and resource measurements were recorded over four years. This paper reports the abundance of flower-visiting aerial insects ('pollinators') associated with the three plant assemblages. 3. For all pollinator groups on all treatments, greater floral resource resulted in an increase in visits. There was, however, a greater abundance of total pollinators recorded on native and near-native treatments compared with the exotic plots. Short-tongued bumblebees followed the same pattern whilst more hoverflies were recorded on the native treatment than the other treatments, and more honeybees on the near-native treatment. There was no difference between treatments in abundance of long-tongued bumblebees or solitary bees. The lack of difference in solitary bee abundance between treatments was probably due to a third of individuals from this group being recorded on one exotic plant species. 5. The number of flower visitors corresponded to the peak flowering period of the treatments, that is there were fewer flower visitors to the exotic treatment compared with the other treatments in early summer but relatively more later in the season. 5. Synthesis and applications. This experiment has demonstrated that utilizing plants from only a single region of origin (i.e. nativeness) may not be an optimal strategy for resource provision for pollinating insects in gardens. Gardens can be enhanced as a habitat by planting a variety of flowering plants, biased towards native and near-native species but with a selection of exotics to extend the flowering season and potentially provide resources for specialist groups.
FIGURE 3 in Identification of exotic pest and Australian native and naturalised species of Tetranychus (Acari: Tetranychidae)
FIGURE 3. Pretarsi in the Tetranychidae. Scale bar = 50 µm.
Supplementary material 1 from: Pienaar EF, Sturgeon DJE (2024) Exotic pet owners' preferences for different ectothermic taxa are based on species traits and purchase prices in the United States. NeoBiota 91: 1-27. https://doi.org/10.3897/neobiota.91.109403
Additional results for reference by readers and the reviewers
Data from: The relationship between native species richness and exotic species richness or occurrence will always be negative when the total number of species is accounted for in statistical models: A response to Beaury et al.
Beaury et al. (2020) attempt to address the scale dependence of evidence for biotic resistance by including environmental covariates that can account for total species richness. However, this approach will incorrectly estimate relationships, driven by the accuracy of the covariates rather than the true relationship between native and non-native species.
Figure 1 from: Mendoza-Franco EF, Caspeta-Mandujano JM, Osorio MT (2018) Ecto- and endo-parasitic monogeneans (Platyhelminthes) on cultured freshwater exotic fish species in the state of Morelos, South-Central Mexico. ZooKeys 776: 1-12. https://doi.org/10.3897/zookeys.776.26149
Figure 1 Map of the state of Morelos, Mexico showing position of each APU: 1 7 Hermanos (18°51'49.82132"N; 98°58'01.20211"W2 Acuícola Ayala (18°45'11.59525"N; 98°56'58.87989"W) 3 Acuícola de Jiutepec (18°52'29.84116"N; 99°09'24.49751"W) 4 Acuícola Jaloxtoc (18°43'56.72740"N; 98°55'20.14003"W) 5 Adilene Marisol (18°35'43.94208"N; 99°01'43.49419"W) 6 Agua Fría (18°33'22.41096"N; 99°00'57.44948"W) 7 Aquafish (18°38'53.20757"N; 99°13'13.80019"W) 8 Betta Fish (18°46'15.00012"N; 99°12'05.44263"W) 9 Centro Zacatepec (18°39'22.70079"N; 99°12'02.36030"W) 10 Centro de Acopio La Perla (18°38'18.23968"N; 99°00'32.15165"W) 11 Consorcio Lugo-Galeana (18°53'48.34681"N; 99°11'13.92251"W) 12 El Chino (18°54'03.35178"N; 99°12'10.27438"W) 13 El Cifón (18°40'42.68111"N; 99°11'26.16448"W) 14 El Invernadero (18°37'11.86468"N; 98°59'37.85120"W) 15 Exopez (18°41'41.78829"N; 99°06'07.81780"W) 16 Granja Acuícola Foras (18°31'07.09460"N; 98°47'54.39963"W); 17. Grupo Carsal (18°37'21.23567"N; 99°00'05.49462"W) 18 Huertas de Cuatla (18°45'41.45252"N; 98°54'57.10516"W) 19 Jesús Madariaga (18°39'59.91903"N; 99°12'05.85187"W) 20 La Buena Fortuna (18°38'07.31312"N; 99°10'58.58424"W) 21 La Cascada (18°41'06.91860"N; 99°09'05.97650"W) 22 Linda Vista (18°38'11.27728"N; 98°59'41.36454"W) 23 Los Huajes (18°38'01.06064"N; 98°59'39.86312"W) 24 Maleny (18°39'43.43675"N; 99°11'52.86078"W) 25 Maricultura Argos (18°35'50.18775"N; 99°12'16.44262"W) 26 Olascoaga (18°55'43.39346"N; 99°10'40.92078"W) 27 Ornapez (18°45'06.02177"N; 98°59'14.37030"W) 28 Platanar (18°43'30.25259"N; 98°54'30.22690"W) 29 Pliego (18°37'45.93123"N; 98°59'53.99321"W) 30 San Tilapia (18°39'09.51796"N; 99°11'36.53955"W) 31 Tropipez (18°46'10.83544"N; 99°12'05.47184"W).
Figure 7 in Key to Florida Alydidae (Hemiptera: Heteroptera) and selected exotic pest species
Figure 7. Habitus images of three exotic alydid pests. (a) Riptortus clavatus, dorsal view; (b) Riptortus dentipes, dorsal view; (c) Stenocoris southwoodi, dorsal view. Images courtesy of Samuel Z. Howard, Smithsonian Institution.
Fig. 1 in Reproductive biology of the peacock bass Cichla piquiti (Perciformes: Cichlidae), an exotic species in a Neotropical reservoir
Fig. 1. Relative bimonthly frequency (%) of gonadal maturation stages for males (a) and females (b) of Cichla piquiti sampled between December 2004 and November 2005 [resting (dotted), initial maturation (oblique lines), advanced maturation (vertical lines), partially spent (horizontal lines)]. Absolute frequencies of each gonadal maturation stage along the bimesters followed by different letters are significantly different (G-test of independence, p <0.05). Sample size is given above bars.
Figure 1 from: Bastida Zavala R, Garcia-Madrigal S (2012) First record in the Tropical Eastern Pacific of the exotic species Ficopomatus uschakovi (Polychaeta, Serpulidae). ZooKeys 238: 45-55. https://doi.org/10.3897/zookeys.238.3970
Figure 1 - A–E Ficopomatus uschakovi, from La Encrucijada Biosphere Reserve, UMAR-Poly 112–113. A, C complete body in lateral and dorsal views; B, D–E opercula, lateral views.
Figure 3 from: Bastida Zavala R, Garcia-Madrigal S (2012) First record in the Tropical Eastern Pacific of the exotic species Ficopomatus uschakovi (Polychaeta, Serpulidae). ZooKeys 238: 45-55. https://doi.org/10.3897/zookeys.238.3970
Figure 3 - A World-wide distribution of Ficopomatus uschakovi. Triangles denote examined material, circles literature records (data from ten Hove and Weerdenburg 1978) B Study area and the localities where specimens of Ficopomatus uschakovi were recollected. 1: Zacapulco; 2: Barra San Juan; 3: Las Garzas boat pier (observed by S.I. Salazar-Vallejo et al., pers. comm.).
Figure 2 from: Bastida Zavala R, Garcia-Madrigal S (2012) First record in the Tropical Eastern Pacific of the exotic species Ficopomatus uschakovi (Polychaeta, Serpulidae). ZooKeys 238: 45-55. https://doi.org/10.3897/zookeys.238.3970
Figure 2 - A–I Ficopomatus uschakovi, from La Encrucijada Biosphere Reserve, UMAR-Poly 112–113. A tubes on mangrove roots B tubes on the shell of the gastropod Thaisella kiosquiformis C mangroves in the collecting site D tubes forming small aggregations E large, single tube F complete specimen in dorsal view G complete specimen with mass of sperm attached to the abdomen H operculum in dorsal view I operculum in aboral view.
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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.