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421 results for “thrips”
Fig. 30 in Revision of Ceranisus and the related thrips-attacking entedonine genera (Hymenoptera: Eulophidae) of the world
Fig. 30. Entedonomphale nubilipennis, male antenna (paralectotype). Scale line = 0.1 mm.
A new optical practice as an effective alternative to insecticides for controlling highly resistant thrips
<p>The documents are raw data for an article entitled "<strong>A new optical practice as an effective alternative to insecticides for controlling highly resistant thrips</strong>", including the original data of Bioassy, Megalurothrips usitatus occurrence rate, RT-qPCR, standard curves, Thrips palmi occurrence rate, and yield and fruit shape of Cowpea and Hami melon.</p>
Data from: Using perennial groundcover crops to suppress weeds and thrips in the southeast cotton belt
<p>This is digital research data corresponding to a published manuscript, Using perennial groundcover crops to suppress weeds and thrips in the southeast cotton belt, in Crop Science, Vol. 63 p. 3037 - 3050.</p> <p>Modern cotton production (<em>Gossypium hirsutum L.</em>) in the United States relies on chemical and physical inputs that increase the environmental and monetary costs of managing the crop. Perennial groundcover crops (PGCC) may reduce inputs by persisting in the interrow spaces of the cotton crop during summer months. A 2-year field study was conducted in Florence, SC, to evaluate growing PGCCs with cotton using a 4 × 4 Latin square consisting of four cover crop treatments: (1) a fallow, unplanted control, (2) annual ryegrass (<em>Lolium multiflorum Lam.</em>) monoculture, (3) a binary red clover (<em>Trifolium pratense L.</em>) and white clover (<em>Trifolium repens L.</em>) mixture, and (4) a trinary mixture of annual ryegrass, red clover, and white clover. Fallow and annual ryegrass treatments were killed with a burndown herbicide application, while treatments containing clovers were mowed. Plots were strip-tilled and planted with cotton in May each year. Interrow biomass, weed and thrips populations, and perennial clover populations were collected from June to October along with annual lint yields from cotton harvest in October.</p>
Data from: Chromosome-level genome of the melon thrips yields insights into evolution of a sap-sucking lifestyle and pesticide resistance
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Sticky trap pattern size for thrips spatial vision
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Biological control of Echinothrips americanus Morgan (Thysanoptera: Thripidae) in sweet pepper using the predatory thrips Franklinothrips vespiformis Crawford (Thysanoptera: Aeolothripidae)
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Monitoring Eastern flower thrips and soybean thrips (Thysanoptera: Thripidae) and the generalist predator, insidious flower bug (Hemiptera: Anthocoridae) in the American Midwest Suction Trap Network
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Data from: Variable resistance to spinetoram in populations of Thrips palmi across a small area unconnected to genetic similarity
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Data from: Using perennial groundcover crops to suppress weeds and thrips in the southeast cotton belt
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Adhesive droplets made from plant-derived oils for control of western flower thrips
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Association between susceptibility of Thrips palmi to spinetoram and frequency of G275E mutation provides basis for molecular diagnostics of field-evolved resistance
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FIGURES 1–6 in Taxonomic confusion among gall-thrips and host-plants, with three new combinations from the genus Austrothrips (Thysanoptera, Phlaeothripidae)
FIGURES 1–6. Ocnothrips cochinchinensis. (1) head; (2) antenna; (3) pelta and tergites I–II; (4) pronotum; (5) mes and metanotum; (6) type slides.
FIGURES 8–17 in Two new monobasic thrips genera for a gall-inducing species and its kleptoparasite (Thysanoptera, Phlaeothripinae)
FIGURES 8–17. Pharothrips hynnis gen et sp. n. (8) female head and thorax ventral; (9) female head ventral; (10) female head lateral; (11) male head ventral; (12) female pronotum; (13) female prosternum; (14) female pelta and tergite I; (15) female tergite IX and tube; (16) male antenna; (17) female antenna.
FIGURES 1–5 in Host-shifts at family level in the Australian Acacia-thrips lineage (Thysanoptera Phlaeothripinae) with two new species
FIGURES 1–5. Brakothrips eucalypti sp. n. (1) head, pronotum and fore legs (arrow to po seta); (2) head; (3) antenna; (4) meso and metanotum, pelta and tergite II; (5) tergites V–VI.
Data from: Inadvertent biological control: an Australian thrips killing an invasive New Zealand tree in California
Transport hubs of international trade and tourism are sites of unprecedented long-distance dispersal of species and novel ecological interactions. In cases of invasive plants released from their specialist natural enemies, novel interactions with both resident enemies and new arrivals can accumulate and potentially reduce weed competitiveness. I present here one dramatic example of this, where an invasive woody weed in southern California is being rapidly controlled by an accidentally introduced genus-specialist herbivorous insect. The New Zealand native shrub/small tree, Myoporum laetum, is a long-time popular ornamental plant in California and has become an invasive woody weed. In 2005, a Myoporum-specific thrips, Klambothrips myopori, was discovered (and described) in California feeding on M. laetum leaves. Several searches have failed to find K. myopori in New Zealand and a population has recently been discovered in Tasmania, Australia, feeding on Myoporum insulare. In 5 years, K. myopori has killed off about half of southern Californian M. laetum with almost all surviving individuals being gradually defoliated. Inadequate border biosecurity has resulted in inadvertent biological control, in a rapid timeframe, caused by a novel enemy. Unfortunately, K. myopori has subsequently been accidentally transported from California to Hawaii where it is now killing off Hawaiian native Myoporum sandwicense. Transport hubs can both connect weeds with natural enemies and disperse those enemies more widely.
FIGURES 2–4. Klambothrips species. 2, K in A new thrips pest of Myoporum cultivars in California, in a new genus of leaf-galling Australian Phlaeothripidae (Thysanoptera)
FIGURES 2–4. Klambothrips species. 2, K. myopori male holotype; 3, K. myopori antenna; 4, K. walsinghami.
FIGURE 5 in A new thrips pest of Myoporum cultivars in California, in a new genus of leaf-galling Australian Phlaeothripidae (Thysanoptera)
FIGURE 5. Relationships between some Australian Phlaeothripinae based on sequence data from the genes "wingless" and "CO1".
FIGURES 44–56 in Species of the Genus Thrips (Thysanoptera, Thripidae) from the Afro-tropical Region
FIGURES 44–56. Thrips species. (44) quadridentatus, paralectotype metanotum.(45) quilici, paratype metanotum. (46) rufescens, paratype metanotum. (47) rufescens, paratype tergite VIII. (48) quilici, paratype tergite VIII. (49) solari, holotype head & pronotum. (50) solari, mesonotum & metanotum. (51) solari, tergites VII–VIII. (52) simplex, metanotum. (53) tenellus, sternites VI–VII. (54) tabaci, pleurotergite. (55) subnudula, sternites VI–VII. (56) subnudula, tergites VII–VIII.
FIGURES 31–43 in Species of the Genus Thrips (Thysanoptera, Thripidae) from the Afro-tropical Region
FIGURES 31–43. Thrips species. (31) microchaetus, mesonotum & metanotum. (32) microchaetus, sternites VI–VII. (33) nigropilosus, metanotum. (34) nigropilosus, tergites II–IV. (35) orientalis, metanotum. (36) orientalis, tergite VIII. (37) palmi, metanotum. (38) parvispinus, metanotum. (39) parvispinus, sternites VI–VII. (40) pretiosus, metanotum. (41) priesneri, pronotum. (42) priesneri, metanotum. (43) pusillus, metanotum.
FIGURES 1–12 in Species of the Genus Thrips (Thysanoptera, Thripidae) from the Afro-tropical Region
FIGURES 1–12. Thrips species. (1) acaciae, head. (2) acaciae, metanotum and clavus. (3) acaciae, pleurotergites. (4) bourbonensis, paratype metanotum. (5) candidus, paratype metanotum. (6) aurantithoracis, holotype metanotum. (7) candidus, paratype tergite VIII. (8) bourbonensis, paratype tergite VIII. (9) florum, head. (10) fumosoides, metanotum. (11) florum, forewing clavus. (12) hawaiiensis, forewing clavus.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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.