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631 results for “Tenuipalpidae”
Figure 1 in Functional response of the predatory mite Amblyseius swirskii (Acari: Phytoseiidae) to Eotetranychus frosti (Tetranychidae) and Cenopalpus irani (Tenuipalpidae)
Figure 1 Functional response curves of adult female Amblyseius swirskii to different stages of Eotetranychus frosti and Cenopalpus irani. Dots represent the observed numbers of prey consumed at each initial prey density, and lines were predicted by the random predator equation (Rogers, 1972).
Figure 3 in Seasonal incidence of Raoiella indica Hirst (Acari: Tenuipalpidae) on different varieties of date palm in Kachchh region of Western India
Figure 3. Pattern of distribution of red palm mite, Raoiella indica in different directions on three different varieties (pooled).
Figure 2 in Theobroma cacao, a new host for Brevipalpus yothersi (Acari: Tenuipalpidae) in Peru
Figure 2 Population of Brevipalpus yothersi in fruits: A – Fruit with dark brown epicarp infested by high populations; B – All forms of development ofB. yothersi in the epicarp; C – Females and immatures mobiles ofB. yothersi in fruits; D – General view of multiple exuvia (white skins) ofB. yothersi from the epicarp of the same fruit.
Figure 1 in Theobroma cacao, a new host for Brevipalpus yothersi (Acari: Tenuipalpidae) in Peru
Figure 1 Morphological characteristics ofBrevipalpus yothersi. female: A – dorsal propodosoma; B – opisthosoma; C – ventral view of the anal and genital regions; D – adult female spermatheca (indicated by arrow). Scale bars = 30µm.
Figure 9 in Two species of Acaricis (Acari: Tenuipalpidae) from New Zealand, moved from the genus Tenuipalpus, with a key to the known species
Figure 9 Acaricis alpinus (Collyer) male: dorsal aspect, right side, of: A – leg I; B – leg II; C– leg III; D – leg IV.
Figure 8 in Two species of Acaricis (Acari: Tenuipalpidae) from New Zealand, moved from the genus Tenuipalpus, with a key to the known species
Figure 8 Acaricis alpinus (Collyer) female: dorsal aspect, right side, of: A – leg I; B – leg II; C – leg III; D – leg IV.
Figure 6 in Two species of Acaricis (Acari: Tenuipalpidae) from New Zealand, moved from the genus Tenuipalpus, with a key to the known species
Figure 6 Differential interference contrast (DIC) image ofAcaricis alpinus (Collyer) (Female): dorsum.
Figure 4 in Two species of Acaricis (Acari: Tenuipalpidae) from New Zealand, moved from the genus Tenuipalpus, with a key to the known species
Figure 4 Acaricis montanus (Collyer) female, dorsal aspect, right side, of: A – leg I; B – leg II; C – leg III; D – leg IV.
Figure 4 Vittacus bougainvilleae collected from South Africa. A in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 4 Vittacus bougainvilleae collected from South Africa. A – Dorsal view; B – lateral view of the opisthosoma; C – female coverflap; D – coxigenital region showing male genitalia.
Figure 5 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 5 Brevipalpus yothersi from bougainvillea in South Africa. A – ventral view; B – dorsal view of opisthosoma; C – spermatheca vesicle.
Figure 1 Vittacus bougainvilleae. A in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 1 Vittacus bougainvilleae. A – Prodorsal shield ornamentation; B – Opisthosomal dorsal pattern; C – whole mite between plant trichomes; D – Legs I and II.
Figure 6 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 6 Brevipalpus californicus from bougainvillea in South Africa. A – ventral view; B –dorsal view; C – spermatheca vesicle.
Figure 2 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 2 Curled up leaves (A, B) and dying flowers (B) of bougainvillea plants infested with Vittacus bougainvilleae at the nursery farm.
Figure 3 in New records of Eriophyidae and Tenuipalpidae mites (Acari: Prostigmata) on bougainvillea plants in South Africa
Figure 3 Vittacus bougainvilleae collected from South Africa. Dorsal view of prodorsal shield ornamentation and opisthosoma.
Figure 3 in Notes on the embryological development of the Brevipalpus yothersi (Acari: Tenuipalpidae)
Figure 3 Internal analysis of the B. yothersi eggs: small perforations with a possible association with
Figure 1 in Notes on the embryological development of the Brevipalpus yothersi (Acari: Tenuipalpidae)
Figure 1 Development timeline of the Brevipalpus yothersi: (a) – B. yothersi female; (b) – Uncleaved egg: nucleus in the center of the egg; (c)
Figure 4 in Tenuipalpidae and Tetranychidae (Trombidiformes, Tetranychoidea) from Syria with a description of a new species of Bryobia
Figure 4 Bryobia hadizenin. sp, female legs (from femur to tarsus): A, B, C, and D – legs I, II; III and IV, respectively. Scale bar = 100 μm.
Figure 5 in Tenuipalpidae and Tetranychidae (Trombidiformes, Tetranychoidea) from Syria with a description of a new species of Bryobia
Figure 5 Bryobia hadizenin. sp, female: A – claw and empodium I; B – claw and empodium II; C – duplex setae on tarsus III; D – solenidion and associated tactile seta on tarsus IV. Scale bars = 10 μm
Figure 3 in Tenuipalpidae and Tetranychidae (Trombidiformes, Tetranychoidea) from Syria with a description of a new species of Bryobia
Figure 3 Bryobia hadizenin. sp, female: A – palpal tibia and tarsus; B – peritreme; C – spermatheca. Scale bars = 20 μm (A and C), 30 μm B.
Figure 1 in First DNA-barcode for the genus Aegyptobia (Trombidiformes: Tenuipalpidae) and molecular barcodes of spider mites (Trombidiformes: Tetranychidae) from Iran
Figure 1. Neighbor-Joining tree of the COI sequences using Tamura-Nei model. Scale bar represents number of nucleotide substitutions per site. Bootstrap was 1000 replicates. Numbers on nodes represent bootstrap values.
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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International Brain Laboratory public data
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OpenNeuro
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