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304 results for “eucalyptus”
FIGURE 5 in New species of Crotonia (Acari: Oribatida: Camisiidae) from Nothofagus and Eucalyptus forests in Victoria, Australia, with a redescription of the fossil species Crotonia ramus (Womersley, 1957)
FIGURE 5. Crotonia momitoi sp. nov. ventral a) holotype female; b) paratype male
FIGURE 11 in New species of Crotonia (Acari: Oribatida: Camisiidae) from Nothofagus and Eucalyptus forests in Victoria, Australia, with a redescription of the fossil species Crotonia ramus (Womersley, 1957)
FIGURE 11. Crotonia blacki sp. nov. protonymph a) dorsal; b) ventral
FIGURE 9 in New species of Crotonia (Acari: Oribatida: Camisiidae) from Nothofagus and Eucalyptus forests in Victoria, Australia, with a redescription of the fossil species Crotonia ramus (Womersley, 1957)
FIGURE 9. Crotonia blacki sp. nov. ventral a) holotype female; b) paratype male
FIGURE 3 in Re-description and first host and biology records of Entedon magnificus (Girault & Dodd) (Hymenoptera, Eulophidae), a natural enemy of Gonipterus weevils (Coleoptera, Curculionidae), a pest of Eucalyptus trees
FIGURE 3. Entedon magnificus, antenna (A, B) and fore wing (C, D). A, C: female. B, D: male.
FIGURE 9. Carnarvon Station Tussock grass with Eucalyptus melanophloia, 24 in The Peacock Spiders (Araneae: Salticidae: Maratus) of the Queensland Museum, including six new species
FIGURE 9. Carnarvon Station Tussock grass with Eucalyptus melanophloia, 24°45'S, 147°44'E, 783 m.
FIGURE 7 in A new species of invasive gall wasp (Hymenoptera: Eulophidae: Tetrastichinae) on blue gum (Eucalyptus globulus) in California
FIGURE 7. Selitrichodes globulus Ƥ. Habitus.
Supplementary dataset for "Plasticity of repetitive sequences demonstrated by the complete mitochondrial genome of Eucalyptus camaldulensis"
Open the record for dataset details and reuse information.
Fig. 1 in A phylogenetic investigation of the taxonomically problematic Eucalyptus odorata complex (E. section Adnataria series Subbuxeales): evidence for extensive interspecific gene flow and reticulate evolution
Fig. 1. (Caption on next page)
Data for: Testing an invasion mechanism for Eucalyptus globulus: is there evidence of allelopathy?
<p><span><span><span><span><span><span><span><span><span><span><span><i>Premise of study</i>- Sparse understory communities, in association with non-native tree species, are often attributed to allelopathy, the chemical inhibition of one plant by another. However, allelopathy is a difficult ecological phenomenon to demonstrate with many studies showing conflicting results. <i>Eucalyptus globulus</i>, a native tree to Australia, is one of the most widely planted trees around the world. Sparse understories are common beneath <i>E. globulus</i>plantations and are often attributed to allelopathy, but the ecological impacts of <i>E. globulus</i>on native plant communities are poorly understood. </span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><i>Methods -</i>To assess allelopathy as a mechanism of understory inhibition, we tested volatile- and water-soluble leaf extracts on seed germination of California native plants. We also quantified germination rates and early seedling growth of native plants grown in soil from <i>E. globulus</i>plantations versus soil from an adjacent native plant community. </span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><i>Key results</i>- Volatile compounds from <i>E. globulus</i>did not significantly reduce germination for any species. Inhibition from water-soluble <i>E. globulus</i>compounds was comparable to that of a native tree, <i>Quercus agrifolia </i>(10%)<i>.</i><i>Eucalyptus globulus</i>soil supported germination and early seedling growth of native species equal to or better than coastal scrub soil, although species responses were variable. </span></span></span></span></span></span></span></span></span></span></span></p> <p><span><span><span><span><span><span><span><span><span><span><span><i>Conclusions</i>- In contrast to previous studies, our results fail to support the hypothesis that <i>E. globulus</i>chemically inhibits germination of native species. California native plants germinate and grow well in soils from <i>E. globulus</i>plantations, which may have significant implications for management and restoration of land historically occupied by <i>E. globulus</i>plantations. </span></span></span></span></span></span></span></span></span></span></span></p>
Supplementary material 1 from: Sanchez-Gonzalez EI, Farias Soares TdP, Galafassi Zarpelon T, Valverde Zauza EA, Gonçalves Mafia R, Alves Ferreira M (2022) Two new species of Calonectria (Hypocreales, Nectriaceae) causing Eucalyptus leaf blight in Brazil. MycoKeys 91: 169-197. https://doi.org/10.3897/mycokeys.91.84896
Figures S1–S6
Figure 1 in How can global climate change influence the geographic distribution of the eucalyptus yellow beetle? Modeling and prediction for Brazil
Figure 1. Current potential geographic distribution of Costalimaita ferruginea determined by the algorithm Envelope Score (AUC = 0.808). The numbers 1 to 5 represent the Brazilian biomes, being 1 = Amazônia, 2 = Caatinga, 3 = Cerrado, 4 = Pantanal, 5 = Mata Atlântica e 6 = Pampa.
Fig. 1 in Susceptibility of Eucalyptus spp. (Myrtales: Myrtaceae) and clones to Leptocybe invasa (Hymenoptera: Eulophidae) in Paraná, Brazil
Fig. 1. Percentage of leaves and stems with galls caused by Leptocybe invasa in approx. 2-m-tall Eucalyptus spp. and clones on each sampling date at Umuarama, PR, Brazil, in 2013.
Figure 9 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 9 Eadya falcata holotype. A Head, frontal view B Head, dorsal view, arrow pointing to emarginate occipital carinae C Head and mesoscutum, dorsal view D Mesopleuron, lateral view E Propodeum, dorsal view.
Figure 8 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 8 Eadya falcata holotype. A Lateral habitus B Dorsal habitus C Fore and hindwing. All scale bars are 1mm in length.
Figure 7 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 7 Eadya duncan Ridenbaugh, sp. n. holotype. A Head, frontal view B Head, dorsal view C Head and mesoscutum, dorsal view D Mesopleuron, lateral view E Propodeum, dorsal view. All scale bars are 1mm in length.
Figure 6 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 6 Eadya duncan Ridenbaugh, sp. n. holotype. A Lateral habitus B Dorsal habitus C Fore and hind wing. All scale bars are 1mm in length.
Figure 4 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 4 Eadya daenerys Ridenbaugh, sp. n. A Lateral habitus, holotype B Dorsal habitus, holotype C Fore and hindwing, paratype. All scale bars are 1mm in length.
Figure 5 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 5 Eadya daenerys Ridenbaugh, sp. n. paratype. A Head, frontal view B Head, dorsal view, arrow indicating simple occipital carinae C Head and mesoscutum, dorsal view, paratype D Mesopleuron, lateral view, paratype E Propodeum, dorsal view F Propodeum, posterio-dorsal view. All scale bars are 1mm in length.
Figure 2 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 2 Eadya annleckieae Ridenbaugh, sp. n. holotype. A Lateral habitus B Dorsal habitus C Fore and hindwing. All scale bars are 1 mm in length.
Figure 3 from: Ridenbaugh RD, Barbeau E, Sharanowski BJ (2018) Description of four new species of Eadya (Hymenoptera, Braconidae), parasitoids of the Eucalyptus Tortoise Beetle (Paropsis charybdis) and other Eucalyptus defoliating leaf beetles. Journal of Hymenoptera Research 64: 141-175. https://doi.org/10.3897/jhr.64.24282
Figure 3 Eadya annleckieae Ridenbaugh, sp. n. holotype. A Head, frontal view B Head, dorsal view C Head and mesoscutum, dorsal view D Mesopleuron, lateral view E Propodeum, dorsal view. All scale bars are 1 mm in length.
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