Natural nanopesticides with origin of Plantago major seeds extract for Tribolium castaneum control
Abstract
Abstract
This study aimed to investigate the insecticidal activity and toxicity durability of
Plantago
major seed (PMS) extract loaded nanoliposomes against
Tribolium castaneum
. The major constituents of PMS extract were determined by GC–MS: benzene dicarboxylic acid (23.49%), dodecane (9.17%), 1-ethynylcyclopentanol (7.36%), heptadecane (6.47%) and cyclohexanol (4.56%). The Characterization of
Plantago
major seed extract loaded nanoliposomes was investigated by SEM, DLS, ζ-potential, FTIR, and encapsulation efficiency. The mean particle size distribution of PMS nanoliposomes is 50 ± 1.8 nm with PDI 0.41 ± 0.014. The ζ-potential of PMS extract loaded nanoliposomes was equal to − 27.23 ± 5.31 mV. The encapsulation efficiency of nanoliposomes containing PMS extract was 96%. PMS extract loaded nanoliposomes have a spherical shape. FTIR reveals interactions of the PMS extract in nanoliposome structures with phospholipid groups. To determine the insecticidal potential of
Plantago
major seed extract nanoliposomes were impregnated with concentration (10, 25, 40, 65, 80, and 100 mg/ml). During fumigant testing, the LC
50
of the
Plantago
major seed extract was 39.30 mg/ml against
Tribolium castaneum
adults after 72 h of exposure time. The requirement decreased to 35.50 mg/ml after the nanoencapsulation of plant extract for 72 h of exposure of time. The mortality percentage of
Tribolium castaneum
by PMS extract and PMS extract loaded nanoliposomes (V: 100 mg/ml) for 60 days after the production of samples 16.25% and 62.50%., respectively. The release percentage of
Plantago
major seed extracts loaded nanoliposomes was 54% after 24 h. The conclusions of this study indicate that nano-encapsulated
Plantago
major seed extracts have good effects on the pest, and can be an effective alternative to synthetic pesticides.
Graphic abstract
Plantago
major seed (PMS) extract loaded nanoliposomes have a good insecticidal effect on
Tribolium castaneum
.
Keywords
- Botanical insecticide,
- Chemical composition,
- Nanoliposomes,
- Plantago major seed,
- Tribolium castaneum
References
- Suresh et al. (2018) Suaeda maritima-based herbal coils and green nanoparticles as potential biopesticides against the dengue vector Aedes aegypti and the tobacco cutworm Spodoptera litura (pp. 225-235) https://doi.org/10.1016/j.pmpp.2017.01.002
- Regnault-Roger et al. (2012) Essential oils in insect control: low-risk products in a high-stakes world (pp. 405-424) https://doi.org/10.1146/annurev-ento-120710-100554
- Peeyush et al. (2011) Insecticidal properties of Mentha species: a review (pp. 802-817) https://doi.org/10.1016/j.indcrop.2011.02.019
- Pant et al. (2014) Insecticidal activity of eucalyptus oil nanoemulsion with karanja and jatropha aqueous filtrates (pp. 119-127) https://doi.org/10.1016/j.ibiod.2013.11.019
- De Oliveira et al. (2014) Application of nanotechnology for the encapsulation of botanical insecticides for sustainable agriculture: prospects and promises (pp. 1550-1561) https://doi.org/10.1016/j.biotechadv.2014.10.010
- Khoshraftar et al. (2019) Synthesis of natural nanopesticides with the origin of Eucalyptus globulus extract for pest control (pp. 286-298) https://doi.org/10.1080/17518253.2019.1643930
- Khoshraftar et al. (2020) Evaluation of insecticidal activity of nanoformulation of Melia azedarach (leaf) extract as a safe environmental insecticide (pp. 1159-1170) https://doi.org/10.1007/s13762-019-02448-7
- Wu et al. (2014) Combined use of phospholipid complexes and self-emulsifying microemulsions for improving the oral absorption of a BCS class IV compound, baicalin (pp. 217-226) https://doi.org/10.1016/j.apsb.2014.03.002
- Nahr et al. (2019) Investigation of physicochemical properties of essential oil loaded nanoliposome for enrichment purposes (pp. 282-289) https://doi.org/10.1016/j.lwt.2019.02.010
- Tan et al. (2014) Liposomes as delivery systems for carotenoids: comparative studies of loading ability, storage stability and in vitro release (pp. 1232-1240) https://doi.org/10.1039/c3fo60498e
- Yadav et al. (2014) Microwave technology for disinfestation of cereals and pulses: an overview (pp. 3568-3576) https://doi.org/10.1007/s13197-012-0912-8
- García et al. (2005) Toxic and repellent effects of Baccharis salicifolia essential oil on Tribolium castaneum (pp. 612-618) https://doi.org/10.1002/ps.1028
- Dissanayaka et al. (2018) Food oils as kairomones for trapping Tribolium castaneum (Herbst) (Coleoptera: Tenebrionidae) adults (pp. 83-88) https://doi.org/10.1016/j.jspr.2018.09.005
- Arthur et al. (2019) Growth and development of Tribolium castaneum (Herbst) on rice flour and brown rice as affected by time and temperature (pp. 73-77) https://doi.org/10.1016/j.jspr.2019.04.005
- Bossou et al. (2015) Characterization of volatile compounds from three Cymbopogon species and Eucalyptus citriodora from Benin and their insecticidal activities against Tribolium castaneum (pp. 306-317) https://doi.org/10.1016/j.indcrop.2015.06.031
- Adom et al. (2017) Chemical constituents and medical benefits of Plantago major (pp. 348-360) https://doi.org/10.1016/j.biopha.2017.09.152
- Atta and El-Sooud (2004) The antinociceptive effect of some Egyptian medicinal plant extracts (pp. 235-238) https://doi.org/10.1016/j.jep.2004.07.006
- Nazarizadeh et al. (2013) Therapeutic uses and pharmacological properties of Plantago major L. and its active constituents (pp. 212-221)
- Kobeasy et al. (2011) Biochemical studies on Plantago major L. and Cyamopsis tetragonoloba L (pp. 83-91)
- Ozaslan et al. (2009) Effect of Plantago major sap on Ehrlich ascites tumours in mice (pp. 955-959)
- Velasco-Lezama et al. (2006) Effect of Plantago major on cell proliferation in vitro (pp. 36-42) https://doi.org/10.1016/j.jep.2005.05.050
- Khoshraftar et al. (2019) Chemical composition of an insecticidal hydroalcoholic extract from tea leaves against green peach aphid (pp. 7583-7590) https://doi.org/10.1007/s13762-018-2177-x
- Aisha et al. (2014) Preparation and characterization of nano liposomes of Orthosiphon stamineus ethanolic extract in soybean phospholipids (pp. 14-23) https://doi.org/10.1186/1472-6750-14-23
- Tavakoli et al. (2018) Evaluation of physicochemical and antioxidant properties of yogurt enriched by olive leaf phenolics within nanoliposomes (pp. 9231-9240) https://doi.org/10.1021/acs.jafc.8b02759
- Hu et al. (2019) Chemical composition and biological activity against Tribolium castaneum (Coleoptera: Tenebrionidae) of Artemisia brachyloba essential oil (pp. 29-37) https://doi.org/10.1016/j.indcrop.2018.10.076
- Chortyk et al. (1996) Syntheses and characterizations of insecticidal sucrose esters (pp. 1551-1557) https://doi.org/10.1021/jf950615t
- Behbahani et al. (2017) Plantago major seed mucilage: optimization of extraction and some physicochemical and rheological aspects (pp. 68-77) https://doi.org/10.1016/j.carbpol.2016.08.051
- Khoshraftar and Shamel (2017) Adsorption of Malachite green dye from aqueous solutions using roots of Azolla filiculoides (pp. 237-252)
- Koul et al. (2008) Essential oils as green pesticides: potential and constraints (pp. 63-84)
- Isman (2000) Plant essential oils for pest and disease management (pp. 603-608) https://doi.org/10.1016/S0261-2194(00)00079-X
- Yang et al. (2004) Ovicidal and adulticidal activity of Eucalyptus globulus leaf oil terpenoids against Pediculus humanus capitis (Anoplura: Pediculidae) (pp. 2507-2511) https://doi.org/10.1021/jf0354803
- Yesil-Celiktas and Cetin-Uyanikgil (2012) In vitro release kinetics of polycaprolactone encapsulated plant extract fabricated by supercritical antisolvent process and solvent evaporation method (pp. 219-225) https://doi.org/10.1016/j.supflu.2011.11.005
- Youssef et al. (2019) Synergistic effect of a novel chitosan/silica nanocomposites-based formulation against gray mold of table grapes and its possible mode of action (pp. 247-258) https://doi.org/10.1016/j.ijbiomac.2019.08.249
10.1007/s40097-020-00346-w