纳米脂质体包裹的 β-茶碱能有效提高对烟粉虱 MED 的防治效果

IF 4.2 1区 农林科学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Pesticide Biochemistry and Physiology Pub Date : 2024-08-14 DOI:10.1016/j.pestbp.2024.106082
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摘要

烟粉虱(Bemisia tabaci)对植物构成严重威胁,防治烟粉虱主要依靠杀虫剂,但杀虫剂的抗药性越来越强。β-茶碱是一种很有前景的农业害虫防治成分,但其水溶性差的特点需要在实际应用中加以改进。纳米技术可以提高挥发性有机化合物(VOCs)的功效和分散性。本研究采用乙醇注射法和超声波分散法构建了一种纳米脂质体载体,并将 β-石竹烯包裹在其中,从而解决了 β-石竹烯溶解性差的缺陷。β-石竹烯纳米脂质体(C-BT-NPs)的尺寸约为 200 nm,zeta 电位的绝对值超过 30 mV,PDI 低于 0.5。在 14 天的储存期内也能保持稳定。C-BT-NPs 对烟粉虱具有有效的杀虫活性,半致死浓度为 1.51 g/L,优于噻虫嗪,可有效控制农业害虫。此外,C-BT-NPs 对番茄植物生长的短期影响极小,表明其对植物是安全的。因此,采用纳米脂质体制备技术的挥发性有机化合物有望减少对传统杀虫剂的依赖,为农业害虫防治提供了新方法。
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β-Caryophyllene wrapped by nanoliposomes efficiently increases the control effect on Bemisia tabaci MED

Bemisia tabaci poses a severe threat to plants, and the control of B. tabaci mainly relies on pesticides, which causes more and more rapidly increasing resistance. β-Caryophyllene is a promising ingredient for agricultural pest control, but its feature of poor water solubility need to be improved in practical applications. Nanotechnology can enhance the effectiveness and dispersion of volatile organic compounds (VOCs). In this study, a nanoliposome carrier was constructed by ethanol injection and ultrasonic dispersion method, and β-caryophyllene was wrapped inside it, thus solving the defect of poor solubility of β-caryophyllene. The size of the β-caryophyllene nanoliposomes (C-BT-NPs) was around 200 nm, with the absolute value of the zeta potential exceeding 30 mV and a PDI below 0.5. The stability was also maintained over a 14-d storage period. C-BT-NPs showed effective insecticidal activity against B. tabaci, with an LC50 of 1.51 g/L, outperforming thiamethoxam and offering efficient agricultural pest control. Furthermore, C-BT-NPs had minimal short-term impact on the growth of tomato plants, indicating that they are safety on plants. Therefore, the VOCs using nanoliposome preparation technology show promise in reducing reliance on conventional pesticides and present new approaches to managing agricultural pests.

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来源期刊
CiteScore
7.00
自引率
8.50%
发文量
238
审稿时长
4.2 months
期刊介绍: Pesticide Biochemistry and Physiology publishes original scientific articles pertaining to the mode of action of plant protection agents such as insecticides, fungicides, herbicides, and similar compounds, including nonlethal pest control agents, biosynthesis of pheromones, hormones, and plant resistance agents. Manuscripts may include a biochemical, physiological, or molecular study for an understanding of comparative toxicology or selective toxicity of both target and nontarget organisms. Particular interest will be given to studies on the molecular biology of pest control, toxicology, and pesticide resistance. Research Areas Emphasized Include the Biochemistry and Physiology of: • Comparative toxicity • Mode of action • Pathophysiology • Plant growth regulators • Resistance • Other effects of pesticides on both parasites and hosts.
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