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304 results for “eucalyptus”
Process modeling, environmental and economic sustainability of the valorization of whey and eucalyptus residues for resveratrol biosynthesis
<p>Tables included in the article "Process modeling, environmental and economic sustainability of the valorization of whey and eucalyptus residues for resveratrol biosynthesis"</p>
Plant management but not fertilization mediates soil carbon emission and microbial community composition in subtropical Eucalyptus plantations
<p><span>The diversity of </span><span>plant functional group</span><span>s</span><span> in plantations affects soil carbon, but we have limited understanding of the underlying mechanisms for how plant management affects soil carbon dynamics. Here, we conducted a 3-year manipulation experiment of plant functional groups that included understory removal, tree root trenching, and fertilization treatments in 2-year-old and 6-year-old <em>Eucalyptus</em> plantations in the subtropical region. The results showed that soil respiration was significantly suppressed by understory removal (-38%), tree root trenching (-41%), and their interactions (-54%), but that fertilization alone and in interactions had no significant effect. The Chao1 indices for soil bacterial and fungal diversity significantly decreased with understory removal in the 2-year-old plantation and with tree root trenching in the 6-year-old plantation. Soil bacterial and fungal communities were also affected by understory removal and tree root trenching. Soil respiration, physicochemical characteristics, microbial diversity, and community composition were significantly affected by plantation age. Reductions in soil carbon emissions were associated with reductions in plant functional groups and soil microbial groups, while increases in soil respiration were associated with soil physicochemical factors, soil temperature, and plantation age. Our findings highlight that plant managements are of great significance to the soil carbon emission processes in afforested plantations.</span></p>
Figure 1 in Diversity of entomopathogenic fungi from soils of eucalyptus and soybean crops and natural forest areas
Figure 1. Entomopathogenic fungi of the genera Aspergillus (A), Beauveria (B), Cordyceps (C), Fusarium (D), Metarhizium (E), Penicillium (F) and Purpureocillium (G) cultivated in Petri dishes with PDA medium.
Figure 3 in How can global climate change influence the geographic distribution of the eucalyptus yellow beetle? Modeling and prediction for Brazil
Figure 3. Predicting of potential areas to the occurrence of Costalimaita ferruginea in the period of 2061-2080, in two climate change scenarios, Representative Concentration Pathways (RCP) 4.5 e 8.5 (W/m2), using 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.
Figure 2 in How can global climate change influence the geographic distribution of the eucalyptus yellow beetle? Modeling and prediction for Brazil
Figure 2. Predicting of potential areas to the occurrence of Costalimaita ferruginea in the period of 2041-2060, in two climate change scenarios, Representative Concentration Pathways (RCP) 4.5 e 8.5 (W/m2), using 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. 2 in Susceptibility of Eucalyptus spp. (Myrtales: Myrtaceae) and clones to Leptocybe invasa (Hymenoptera: Eulophidae) in Paraná, Brazil
Fig. 2. Percentage of leaves and stems with galls caused by Leptocybe invasa in plants in each stratum (lower, middle, upper) of approx. 2-m-tall Eucalyptus spp. and clones at Umuarama, PR, Brazil, in 2013.
Fig. 2 in Foraging activity of Palmistichus elaeisis (Hymenoptera: Eulophidae) at various densities on pupae of the eucalyptus defoliator Thyrinteina arnobia (Lepidoptera: Geometridae)
Fig. 2. (A) Duraton of life cycle (egg to adult) and (B) numbers of Palmistichus elaeisis progeny with a density of 1, 3, 6, 9, 12, 15, 18, or 21 ovipositng females per Thyrinteina arnobia pupa at 25 ± 2 °C, 70 ± 10% RH, and a 12:12 h L:D photoperiod.
Fig. 1 in Foraging activity of Palmistichus elaeisis (Hymenoptera: Eulophidae) at various densities on pupae of the eucalyptus defoliator Thyrinteina arnobia (Lepidoptera: Geometridae)
Fig. 1. Percentage of pupae parasitzed and percentage of emergence of Palmistichus elaeisis with a density of 1, 3, 6, 9, 12, 15, 18, or 21 ovipositng females per Thyrinteina arnobia pupa at 25 ± 2 °C, 70 ± 10% RH, and a 12:12 h L:D photoperiod. Statstcal significance: parasitsm, P = 0.3770; emergence, P = 0.034.
Fig. 1 in Selitrichodes neseri (Hymenoptera: Eulophidae) recovered from Leptocybe invasa (Hymenoptera: Eulophidae) galls afer initial release on Eucalyptus (Myrtaceae) in Brazil, and data on its biology
Fig. 1. Municipality of Rio Real, Bahia State, where Selitrichodes neseri (Hymenoptera: Eulophidae) adults were released for the first time in Brazil.
Fig. 1 in A study on the spider fauna (Arachnida, Araneae) associated with Eucalyptus camadulensis in some part of Iran, with three new records
Fig. 1: Map of Iran: Golestan, Guilan, Mazandaran, Fars and Khuzestan provinces, where the specimens have been collected.
Figure 2 in Social wasps (Hymenoptera: Vespidae) associated with Eucalyptus sp. plantations from an Altitude Field in Southern Minas Gerais State, Brazil
Figure 2. Aerial view of the sampled region, exemplifying the replacement of native vegetation by the monoculture of Eucalyptus spp. / Vista aérea de la región muestreada, ejemplificando el reemplazo de la vegetación nativa por el monocultivo de Eucalyptus spp.
Figure 1 in Social wasps (Hymenoptera: Vespidae) associated with Eucalyptus sp. plantations from an Altitude Field in Southern Minas Gerais State, Brazil
Figure 1. Limits of the sampled area in Morro do Ferro, municipality of Poços de Caldas, Minas Gerais, Brazil. / LÍmites del área de muestreo en Morro do Ferro, municipio de Poços de Caldas, Minas Gerais, Brasil.
Figure 4 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 4. Longitudinal section of thorax highlighting the gastric ceca of 4th instar Anopheles stephensi larvae (40×): (a) Control larva having epithelial cells (EC), vesicles (V), nucleus (N), peritrophic membrane (PM), basement-membrane (BM), muscle fibers (MF), microvilli (MV); (b) Eucalyptus globulus oil treated larva showing diversifications in various regions; (c) Aloe vera oil treated larva showing rifts in peritrophic membrane (PM).
Figure 3 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 3. Longitudinal sections of head highlighting the region of imaginal bud of antennae (IBA) of 4th instar Anopheles stephensi larvae (40×): (a) Control larva showing intact IBA; (b) Eucalyptus globulus oil treated larva showing cracks and disorganization in IBA; (c) Aloe vera oil treated larva showing stretching and elongation in IBA.
Figure 5 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 5. Longitudinal sections of abdomen of 4th instar Anopheles stephensi larvae (10×): (a) Control larva showing lumen (L) and muscle fibers (MF); (b) Eucalyptus globulus oil treated larva showing disintegration; (c) Aloe vera oil treated larva showing perturbation and lesions in the alimentary canal.
Figure 7 in Study of histoarchitectural changes in Anopheles stephensi larvae following exposure to Eucalyptus globulus and Aloe vera oils
Figure 7. Longitudinal sections of midgut region highlighting fat bodies of 4th instar Anopheles stephensi larvae (40×): (a) Control larva showing deposition of fat bodies (FB); (b) Eucalyptus globulus oil treated larva showing disappearance of fat bodies (FB) in various areas; (c) Aloe vera oil treated larva showing very little disruption of fat bodies (FB).
Fig. 3 in The stem borer Zeuzera multistrigata Moore (Lepidoptera, Cossidae): a serious pest undermining Eucalyptus plantations in Northern Vietnam
Fig. 3 Symptoms of Zeuzera multistrigata in Eucalyptus hybrid: a. damaged tree; b. damage to the wood; c. broken tree after sereous damaged by Z. multistrigata.
Figure 2 in The stem borer Zeuzera multistrigata Moore (Lepidoptera, Cossidae): a serious pest undermining Eucalyptus plantations in Northern Vietnam
Figure 2. Morphological characteristics of Zeuzera multistrigata: a, b. female adult; a. dorsal view b. ventral view; c. eggs; d. larva; e. Pupa
Fig. 2 in Environmental determinants affecting the occurrence of defoliator caterpillars on Eucalyptus (Myrtaceae) plantations in the Brazilian Amazonian region
Fig. 2. Average annual growth of Eucalyptus urophylla (Myrtaceae) trees (m3 of wood per ha per yr) as a function of the total number of Lepidoptera individuals collected per light trap (Almeirim Municipality, Pará State, and Laranjal do Jari Municipality, Amapá State, Brazil).
Fig. 3 in Environmental determinants affecting the occurrence of defoliator caterpillars on Eucalyptus (Myrtaceae) plantations in the Brazilian Amazonian region
Fig. 3. Total number of individuals of the 2 Lepidoptera primary pests, Misogada bleura (Lepidoptera: Notodontidae) and Sarsina violascens (Lepidoptera: Lymantriidae), collected with light traps in Eucalyptus urophylla (Myrtaceae) plantations as a function of the distance from the area of native vegetation (Almeirim Municipality, Pará State, and Laranjal do Jari Municipality, Amapá State, Brazil).
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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
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.