Shawer Rady, El-Leithy Eman S, Abdel-Rashid Rania S, Eltaweil Abdelazeem S, Baeshen Rowida S, Mori Nicola
Department of Plant Protection, Faculty of Agriculture (Saba Basha), Alexandria University, Alexandria 21531, Egypt.
Department of Pharmaceutics and Industrial Pharmacy, Faculty of Pharmacy, October University for Modern Sciences and Arts (MSA), Cairo 12451, Egypt.
Nanomaterials (Basel). 2022 Sep 8;12(18):3110. doi: 10.3390/nano12183110.
The encapsulation of pesticides within nanoparticles is a promising approach of advanced technology in sustainable agriculture. Lambda-cyhalothrin (LC) was encapsulated by the ionotropic gelation technique into chitosan (CS)/tripolyphosphate (TPP) and CS/alginate (ALG) matrixes. CS-LC nanoparticles were characterized, and their efficacy was then evaluated against the key pest of soft fruits in Europe and the United States, . The encapsulation efficiency (74%), nanoparticle yield (80%), polydispersity index (0.341), zeta potential (-23.1 mV) and particle size (278 nm) were determined at the optimum conditions. FTIR confirmed the cross-linkage between CS and TPP/ALG in the nanoparticles. The optimum formula recommended by the fractional factorial design was associated with the formulation variables of CS of high or low molecular weight, cross-linking agent (TPP), LC concentration (1.5% ) and stirring rate (1500 rpm), showing the highest desirability value (0.5511). CS-LC nanoparticles of the lowest particle size (278 nm) exhibited the highest percent mortality of males (86%) and females (84%), exceeding that caused by the commercial product (Karate-zeon 10% CS) at 2 HAT. This is the first work to use the ionic gelation technique to make LC nanoparticles, to the best of our knowledge. The encapsulation of chemical pesticides within biodegradable polymeric nanoparticles could be helpful for establishing a sustainable IPM strategy with benefits for human and environmental health and the lifetime of pesticides.
将农药包裹在纳米颗粒中是可持续农业中先进技术的一种有前景的方法。通过离子凝胶化技术将高效氯氟氰菊酯(LC)包裹在壳聚糖(CS)/三聚磷酸钠(TPP)和CS/海藻酸钠(ALG)基质中。对CS-LC纳米颗粒进行了表征,然后评估了它们对欧美软果主要害虫的防治效果。在最佳条件下测定了包封率(74%)、纳米颗粒产率(80%)、多分散指数(0.341)、zeta电位(-23.1 mV)和粒径(278 nm)。傅里叶变换红外光谱(FTIR)证实了纳米颗粒中CS与TPP/ALG之间的交联。分数因子设计推荐的最佳配方与高分子量或低分子量CS、交联剂(TPP)、LC浓度(1.5%)和搅拌速率(1500 rpm)的配方变量相关,显示出最高的可取性值(0.5511)。粒径最小(278 nm)的CS-LC纳米颗粒对雄性(86%)和雌性(84%)表现出最高的死亡率,超过了2小时龄时商业产品(功夫菊酯10% CS)造成的死亡率。据我们所知,这是第一项使用离子凝胶化技术制备LC纳米颗粒的工作。将化学农药包裹在可生物降解的聚合物纳米颗粒中有助于建立一种可持续的综合虫害管理策略,对人类和环境健康以及农药的使用寿命都有益处。