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Title atribuciones de causalidad hacia las drogas en estudiantes de bachillerato
Journal revista mexicana de psicolog'ia
Year 1995
DOI 10.1007/s11356-017-8822-y
Cited By 0
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Abstract
a wide number of studies dealing with mosquito control focus on toxicity screenings of whole plant essential oils, while limited efforts shed light on main molecules responsible of toxicity, as well as their mechanisms of action on non-target organisms. in this study, gc-ms shed light on main essential oil components extracted from leaves of the suriname cherry eugenia uniflora, i.e., curzerene (35.7%), trans--elemenone (11.5%), and -elemene (13.6%), testing them on anopheles subpictus, aedes albopictus, and culex tritaeniorhynchus larvae. non-target toxicity experiments were carried out on four species of aquatic larvivorous organisms, including fishes, backswimmers, and waterbugs. the essential oil from e. uniflora leaves tested on an. subpictus, ae. albopictus, and cx. tritaeniorhynchus showed lc<sub>50</sub> of 31.08, 33.50, and 36.35 g/ml, respectively. curzerene, trans--elemenone, and -elemene were extremely toxic to an. subpictus (lc<sub>50</sub> = 4.14, 6.13, and 10.53 g/ml), ae. albopictus (lc<sub>50</sub> = 4.57, 6.74, and 11.29 g/ml), and cx. tritaeniorhynchus (lc<sub>50</sub> = 5.01, 7.32, and 12.18 g/ml). the essential oil from e. uniflora leaves, curzerene, trans--elemenone, and -elemene showed low toxicity to larvivorous fishes, backswimmers, and waterbugs, with lc<sub>50</sub> ranging from 303.77 to 6765.56 g/ml. predator safety factor (psf) ranged from 55.72 to 273.45. overall, we believe that curzerene isolated from the essential oil from e. uniflora leaves can represent an ideal molecule to formulate novel mosquito larvicides, due to its extremely low lc<sub>50</sub> on all tested mosquito vectors (4.14-5.01 g/ml), which far encompasses most of the botanical pesticides tested till now. notably, the above-mentioned lc<sub>50</sub> did not damage the four aquatic predators tested in this study.
1
Plants
24
Compounds
24
Records

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Compounds
Plants
Plant Parts
All Records
CompoundCount
gamma-elemene1
y-cadinene1
trans-beta-elemenone1
spathulenol1
selina-3,7-(11)-diene1
myrcene1
linalool1
limonene1
globulol1
germacrone1
germacrene d1
germacrene b1
(e)-caryophyllene1
delta-elemene1
delta-cadinene1
curzerene1
caryophyllene oxide1
beta-selinene1
beta-elemene1
beta-chamigrene1
atractilona1
alpha-humulene1
alpha-cubebene1
allo-aromadendrene1
PlantFamily
Eugenia unifloramyrtaceae
Plant PartCount
leaf24
PlantCompoundPart%
Eugenia uniflora (e)-caryophyllene leaf 3.2
Eugenia uniflora allo-aromadendrene leaf 0.9
Eugenia uniflora alpha-cubebene leaf 1.1
Eugenia uniflora alpha-humulene leaf 1.2
Eugenia uniflora atractilona leaf 1.8
Eugenia uniflora beta-chamigrene leaf 1.2
Eugenia uniflora beta-elemene leaf 3.8
Eugenia uniflora beta-selinene leaf 1.5
Eugenia uniflora caryophyllene oxide leaf 1.4
Eugenia uniflora curzerene leaf 35.7
Eugenia uniflora delta-cadinene leaf 1.6
Eugenia uniflora delta-elemene leaf 1.7
Eugenia uniflora gamma-elemene leaf 13.6
Eugenia uniflora germacrene b leaf 1.2
Eugenia uniflora germacrene d leaf 1.6
Eugenia uniflora germacrone leaf 1.6
Eugenia uniflora globulol leaf 1.2
Eugenia uniflora limonene leaf 1.6
Eugenia uniflora linalool leaf 1.2
Eugenia uniflora myrcene leaf 1.3
Eugenia uniflora selina-3,7-(11)-diene leaf 1.4
Eugenia uniflora spathulenol leaf 1.7
Eugenia uniflora trans-beta-elemenone leaf 11.5
Eugenia uniflora y-cadinene leaf 1.1