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582 results for “Ambrosia”

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zenodo28/100

Supplementary material 1 from: Colombari F, Battisti A (2023) Citizen science at school increases awareness of biological invasions and contributes to the detection of exotic ambrosia beetles. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 211-229. https://doi.org/10.3897/neobiota.84.95177

Lecture questionnaires

opencc-zeroMay 2023View details →
zenodo28/100

Fig. 1 in Psilostachyins as trypanocidal compounds: Bioguided fractionation of Ambrosia tenuifolia chemically modified extract

Fig. 1. Natural compounds isolated from Ambrosia tenuifolia.

opennotspecifiedFeb 2022View details →
zenodo28/100

Fig. 3 in Psilostachyins as trypanocidal compounds: Bioguided fractionation of Ambrosia tenuifolia chemically modified extract

Fig. 3. Proposed oxidative derivatization of Psi B with mCPBA.

opennotspecifiedFeb 2022View details →
dryad28/100

Causes of differences in the distribution of the invasive plants Ambrosia artemisiifolia and Ambrosia trifida in Yili Valley, China

Open the record for dataset details and reuse information.

publicSep 2021View details →
dryad28/100

Data from: Biological factors contributing to bark and ambrosia beetle species diversification

Open the record for dataset details and reuse information.

publicFeb 2017View details →
zenodo24/100

Figure 6 from: Sittichaya W, Smith S, Beaver RA, Thaochan N (2021) Revision of the xyleborine ambrosia beetle genus Microperus Wood, 1980 (Curculionidae, Scolytinae, Xyleborini) of Thailand with four new species and four newly recorded species. ZooKeys 1074: 191-214. https://doi.org/10.3897/zookeys.1074.76235

Figure 6 Microperus exsculptus (Eggers, 1927) comb. nov. A dorsal view B lateral view.

opencc-by-4.0Dec 2021View details →
zenodo24/100

Figure 7 from: Sittichaya W, Smith S, Beaver RA, Thaochan N (2021) Revision of the xyleborine ambrosia beetle genus Microperus Wood, 1980 (Curculionidae, Scolytinae, Xyleborini) of Thailand with four new species and four newly recorded species. ZooKeys 1074: 191-214. https://doi.org/10.3897/zookeys.1074.76235

Figure 7 Microperus chrysophylli (Eggers, 1930) A dorsal view B lateral view.

opencc-by-4.0Dec 2021View details →
zenodo24/100

Figure 9 from: Sittichaya W, Smith S, Beaver RA, Thaochan N (2021) Revision of the xyleborine ambrosia beetle genus Microperus Wood, 1980 (Curculionidae, Scolytinae, Xyleborini) of Thailand with four new species and four newly recorded species. ZooKeys 1074: 191-214. https://doi.org/10.3897/zookeys.1074.76235

Figure 9 Microperus quercicola (Eggers, 1926) A dorsal view B lateral view.

opencc-by-4.0Dec 2021View details →
zenodo24/100

Figure 8 from: Sittichaya W, Smith S, Beaver RA, Thaochan N (2021) Revision of the xyleborine ambrosia beetle genus Microperus Wood, 1980 (Curculionidae, Scolytinae, Xyleborini) of Thailand with four new species and four newly recorded species. ZooKeys 1074: 191-214. https://doi.org/10.3897/zookeys.1074.76235

Figure 8 Microperus nanus (Browne, 1949) A dorsal view B lateral view.

opencc-by-4.0Dec 2021View details →
zenodo24/100

Three inhibitory phenolic acids against common ragweed (Ambrosia artemisiifolia L.) had a minimal effect on maize growth in vitro and in vivo

<p><span>With the increasing demand for non-chemical weed control methods, phenolic acids have shown promise due to their natural weed inhibitory potential. In this study, the inhibitory effect of </span><span>ferulic acid, vanillic acid and <em>p</em>-coumaric acid was investigated on <em>Ambrosia artemisiifolia</em> L. and the selectivity of <em>Zea mays</em> L. against these phenolic acids was tested. The seeds of <em>A. artemisiifolia</em> and <em>Z. mays</em> were treated <em>in vitro</em> with <em>three phenolic acids</em> at doses of 200 - 600 &times; 10<sup>-7</sup> mol and <em>in vivo</em> foliar on <em>A. artemisiifolia</em> and <em>Z. mays</em> plants. While all phenolic acids had effects on the early growth of <em>A. artemisiifolia,</em> <em>p</em>-coumaric acid significantly reduced the length of radicle and hypocotyl by more than 60% while the effects on <em>Z. mays</em> were minimal. <em>In vivo</em> assessments using chlorophyll fluorescence and multispectral imaging showed selective stress responses in <em>A. artemisiifolia</em> but not in <em>Z. mays</em> after foliar application. The <em>in vitro</em> results show that <em>p</em>-coumaric acid is a promising compound for the control of <em>A. artemisiifolia</em>. However, these phenolic acids at these doses led to an insufficient reduction in photochemical efficiency. Therefore, these natural compounds need to be combined with other methods of weed control. </span></p>

opencc-by-4.0Aug 2024View details →
ClinicalTrials.gov24/100

The Significance of Ambrosia in Allergic Rhinitis and Asthma in Israel

ClinicalTrials.gov study NCT01686048. IPD Sharing: Not stated. Countries: 1. Publications: 0.

restrictedIPD-UNDECIDEDFeb 2026View details →
ClinicalTrials.gov24/100

Ambrosia: Evaluating the Effects of a Food-As-Medicine Platform on Gut Microbiome Composition and Metabolism

ClinicalTrials.gov study NCT06091813. IPD Sharing: NO. Countries: 1. Publications: 0.

closedIPD-NOFeb 2026View details →
zenodo20/100

FIGURE 1 in Eggersanthus Sittichaya & Smith gen. nov., a new Oriental ambrosia beetle genus (Coleoptera: Curculionidae: Scolytinae: Xyleborini)

FIGURE 1. Eggersanthus sublaevis (Eggers, 1927) comb. nov. A dorsal view, B lateral view, C posterolateral view, D front, E declivity, and metatibia, F protibia posterior face, G protibia anterior face.

opennotspecifiedMay 2020View details →
zenodo20/100

FIGURE 2 in Establishment of a non-native xyleborine ambrosia beetle, Xyleborus monographus (Fabricius) (Coleoptera: Curculionidae: Scolytinae), new to North America in California

FIGURE 2. Elytral declivities of Xyleborus monographus (A) and X. celsus (B). I-2 and I-3: Interstriae 2 and 3 respectively. Scale bars represent 0.2 mm.

opennotspecifiedJun 2020View details →
zenodo20/100

FIGURE 2 in First record of the Granulate Ambrosia Beetle, Xylosandrus crassiusculus (Coleoptera: Curculionidae, Scolytinae), in the Iberian Peninsula

FIGURE 2. Female of Xylosandrus crassiusculus (A) Dorsal view, (B) lateral view, (C) retro-lateral view, (D) elytral declivity detail.

opennotspecifiedDec 2017View details →
zenodo20/100

FIGURES 1‒4. Cyclorhipidion druk holotype, 3.4 in The bark and ambrosia beetles of Bhutan (Coleoptera: Curculionidae: Scolytinae and Platypodinae): a synopsis with three new species of Scolytinae

FIGURES 1‒4. Cyclorhipidion druk holotype, 3.4 mm. Dorsal, lateral, posterior oblique and anterior views.

opennotspecifiedAug 2022View details →
zenodo20/100

FIGURE 10 in A taxonomic review of Sueus Murayama, 1951 ambrosia beetles (Coleoptera: Curculionidae: Scolytinae: Hyorrhynchini) aided by molecular phylogenetic analyses

FIGURE 10. Sueus striatulus female holotype (NHMW), 1.75 mm A) dorsal view; B) lateral view; C) frons; D) posterolateral view.

opennotspecifiedJul 2024View details →
zenodo20/100

PLATE 4 in A Synopsis of the Scolytine Ambrosia Beetles of Thailand (Coleoptera: Curculionidae: Scolytinae)

PLATE 4. Dorsal and lateral views of ambrosia beetles. Figures 27–28. Pseudowebbia trepanicauda (Eggers). Figures 29–30. Webbia biformis Browne. Figures 31–32. Webbia cornuta Schedl. Figures 33–34. Webbia duodecimspinata Schedl.

opennotspecifiedOct 2014View details →
zenodo20/100

Fig. 1 in A Review of the Ambrosia Beetle Genus Cryptoxyleborus Schedl (Coleoptera: Curculionidae: Scolytinae)

Fig. 1. Holotype of Cryptoxyleborus cuneatus Beaver &amp; Hulcr, new species, female, dorsal and lateral aspect, 1.8 mm.

opennotspecifiedMar 2008View details →
ClinicalTrials.gov20/100

Allergenic Effect of Ambrosia in Israel

ClinicalTrials.gov study NCT01413256. IPD Sharing: Not stated. Countries: 0. Publications: 0.

restrictedIPD-UNDECIDEDFeb 2026View details →

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