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10,635 results for “Mites”
Figure 8 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 8. (A) Healthy infructescence of a Rhodiola rosea plant from Nunavik (Canada) versus (B) a mite-infested inflorescence (mostly pale green or yellowish) that partly (centrally) developed into fruits (yellow to red). (C) Dried inflorescences from Labrador (Canada) with a few (upper right) to most (lower left) flowers galled, and a galled leaf (isolated, in the middle). (D) Dried inflorescences from western Russia that were preserved in an herbarium for over 100 years. (E,F) Enlargement of a galled flower and galled leaf from Labrador (same scale). Arrows point at some of the galled flowers (B‒D) or leaves (C). The scale on (C) also applies to (D), and is approximate for (A,B).
Figure 1 in A gall mite, Aceria rhodiolae (Acari: Eriophyidae), altering the phytochemistry of a medicinal plant, Rhodiola rosea (Crassulaceae), in the Canadian Arctic
Figure 1. (A) Map of Canada, showing the area surveyed for Rhodiola rosea in Nunavik, Québec (in white). The small arrow indicates a site where additional samples were taken in Labrador, Newfoundland. (B) Region along the coast of Ungava Bay where populations of R. rosea were surveyed (geographic extremes of study sites: northwest 61.078°N, 69.632°W; northeast 60.422°N, 64.839°W; south 58.023°N). Open circles indicate sites with at least a few galled plants, whereas solid circles indicate sites with no galled plants.
Figure 7 in New eriophyoid mites (Acari: Prostigmata: Eriophyoidea) from cultivated plants from northeastern Brazil, including the second taxon in the Prothricinae
Figure 7. Tegolophus indica. CGM, coxigenital region, male; D, dorsal habitus, female; DS, detail of prodorsal shield; em, empodium, leg I, female; IG,. internal genital structures, female; L1, leg I, female; L2, leg II, female; V, ventral habitus, female.
Figure 6 in New eriophyoid mites (Acari: Prostigmata: Eriophyoidea) from cultivated plants from northeastern Brazil, including the second taxon in the Prothricinae
Figure 6. Thamnacus paubrasil sp. nov. (A) Dorsal habitus, female; (B) ventral habitus, female; (C) lateral habitus, female; (D) leg I and II, female; (E) epigynum; (F) genitalia, male; (G) empodium, female.
Figure 13 in The soil mite family Galumnidae of Iran (Acari: Oribatida)
Figure 13. Pergalumna iunctiporosa sp. nov. (A) Dorsofrontal view of prodorsum, partial; (B) palp, left, antiaxial view; (C) posterodorsal view of notogaster, partial.
Figure 9 in The soil mite family Galumnidae of Iran (Acari: Oribatida)
Figure 9. Morphological characters of different species. (A–D) Galumna granulimorpha sp. nov. (A) Rostrum (arrow indicates central carina); (B) lateral view of sensillus; (C) pteromorph; (D) porose areas A3 and Ap. (E–H) Pergalumna iunctiporosa sp. nov. (E) Rostrum (arrow indicates central carina); (F) pteromorph; (G) porose areas, lyrifussure and opisthonotal gland opening; (H) dorsolateral view of sensillus.
Figure 10 in The soil mite family Galumnidae of Iran (Acari: Oribatida)
Figure 10. Galumna iranensis Mahunka et Akrami, 2001. (A) Dorsal view of idiosoma; (B) lateral view of prodorsum; (C) lateral view of sensillus; (D) dorsofrontal view of prodorsum, partial; (E) ventral view of idiosoma.
Figure 2 in The soil mite family Galumnidae of Iran (Acari: Oribatida)
Figure 2. Allogalumna dentirostrata sp. nov. (A) Prodorsum and anterior part of notogaster, showing variation of porose area Aa; (B) chelicera, left, antiaxial view (only tip is shown); (C) dorsofrontal view of prodorsum; (D) lateral view of notogaster.
Figure 11 in The soil mite family Galumnidae of Iran (Acari: Oribatida)
Figure 11. Morphological characters of different species. (A––D) Galumna iranensis Mahunka et Akrami, 2001. (A) Lateral view of proterosoma (arrow indicates dorsosejugal porose area Ad); (B) dorsal view of prodorsum (arrow indicates central carina of rostrum); (C) lateral part of notogaster; (D) lateral view of sensillus. (E–H) Pergalumna microtuberculata sp. nov. (E) Posterior view of notogaster showing porose areas A3 and Ap; (F) porose area Aa; (G) posterior part of notogaster; (H) pteromorph.
Figure 2 in Comparison of the species composition of Gamasina mite communities (Acari: Mesostigmata) in selected caves of the Kraków-Cz stochowa Upland (southern Poland) and their immediate surroundings
Figure 2. Diagram of the correspondence analysis (CA) for the sampling sites. The diagram shows only the most important species (for abbreviations see Table 1).
Selection for male weapons boosts female fecundity, eliminating sexual conflict in the bulb mite
<p>Extreme differences between the sexes are usually explained by intense sexual selection on male weapons or ornaments. Sexually antagonistic genes, with a positive effect on male traits but a negative effect on female fitness, create a negative inter-sexual correlation for fitness (sexual conflict). However, such antagonism might not be apparent if sexually selected male traits are condition-dependent, and condition elevates female fitness. Here we reveal a surprising positive genetic correlation between male weaponry and female fecundity. Using mite lines that had previously been through 13 generations of selection on male weapons (fighting legs), we investigated correlated evolution in female fecundity. Females from lines under positive selection for weapons (up lines) evolved higher fecundity, despite evolving costly, thicker legs. This is likely because male mites have condition-dependent weaponry that increases our ability to indirectly select on male condition. Alleles with positive effects on condition in both sexes could have generated this correlation because: the up lines evolved a higher proportion of fighters and there were positive correlations between weapon size and the male morph and sex ratios of the offspring. This positive inter-sexual genetic correlation should boost the evolution of male weapons and extreme sex differences.</p>
Figure 2 in New records of the water mite genus Arrenurus Dugès, 1834 from South America (Acari: Hydrachnidia: Arrenuridae), with the description of five new species and one new subspecies
Figure 2 Arrenurus rotundus (Daday), male. A – dorsum; B – venter; C – palp; D – palp. Arrenurus minimus (Daday), female, Rio Cuminá, Brazil, slide 7343 Viets coll. (slide 43137 SMF). E – palp. Scale bars: A, B = 100 µm, C-E = 50 µm.
Figure 9 Arrenurus surinamensis n in New records of the water mite genus Arrenurus Dugès, 1834 from South America (Acari: Hydrachnidia: Arrenuridae), with the description of five new species and one new subspecies
Figure 9 Arrenurus surinamensis n. sp., A-D holotype male, E paratype female. A – dorsum; B – venter; C – left palp; D – right palp; E – venter. Scale bars: A-B = 100 µm, C-D = 50 µm.
Figure 6 Arrenurus mansoensis n in New records of the water mite genus Arrenurus Dugès, 1834 from South America (Acari: Hydrachnidia: Arrenuridae), with the description of five new species and one new subspecies
Figure 6 Arrenurus mansoensis n. sp., holotype male. A – dorsum; B – venter; C – palp. Scale bars: A, B = 100 µm, C = 50 µm.
Figure 5 Austrocarabodes parapustulatus Mahunka, 2009 in Contribution to the knowledge of oribatid mites of the genus Austrocarabodes (Acari, Oribatida, Carabodidae) of Madagascar
Figure 5 Austrocarabodes parapustulatus Mahunka, 2009, adult: a – dorsal view; b – ventral view (legs omitted); c – lateral view (legs omitted). Scale bar 100 μm.
Figure 4 in Contribution to the knowledge of oribatid mites of the genus Austrocarabodes (Acari, Oribatida, Carabodidae) of Madagascar
Figure 4 Austrocarabodes madagascarensisn. sp., adult, SEM micrographs: a – anterior view; b – posterior view; c – rostral seta; d – bothridial seta, humeral process, some notogastral setae and part of sejugal region, dorsal view; e – part of anoadanal region; f – gnathosoma, ventral view; g – gnathosoma and anterolateral part of prodorsum, lateral view; h – bothridial seta, bothridium, humeral process, some notogastral setae and sejugal region, lateral view. Scale bar 100 μm (a), scale bar 50 μm (b), scale bar 20 μm (c–h).
Figure 1 Austrocarabodes madagascarensis n in Contribution to the knowledge of oribatid mites of the genus Austrocarabodes (Acari, Oribatida, Carabodidae) of Madagascar
Figure 1 Austrocarabodes madagascarensis n. sp., adult: a – dorsal view; b – ventral view (legs omitted); c – lateral view (gnathosoma and legs omitted). Scale bar 100 μm.
Figure 8 in Contribution to the knowledge of oribatid mites of the genus Austrocarabodes (Acari, Oribatida, Carabodidae) of Madagascar
Figure 8 Austrocarabodes planisetus Mahunka and Mahunka-Papp, 2011, adult: a – dorsal view; b – ventral view (legs omitted); c – lateral view (legs omitted). Scale bar 100 μm.
Figure 5 Arrenurus ludificator Koenike, A-D male, E female. A in New records of the water mite genus Arrenurus Dugès, 1834 from South America (Acari: Hydrachnidia: Arrenuridae), with the description of five new species and one new subspecies
Figure 5 Arrenurus ludificator Koenike, A-D male, E female. A – dorsum; B – venter; C – lateral view; D – palp; E – venter. Scale bars: A-C, E = 200 µm, D = 50 µm.
Figure 8 Arrenurus stagnalis n in New records of the water mite genus Arrenurus Dugès, 1834 from South America (Acari: Hydrachnidia: Arrenuridae), with the description of five new species and one new subspecies
Figure 8 Arrenurus stagnalis n. sp., A-D holotype male, E paratype female. A – dorsum; B – venter; C – lateral view (not all details shown); D – palp; E – venter. Scale bars: A-C = 100 µm, D = 50 µm, E = 200 µm.
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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.