Carbon Quantum Dot Nanoparticles Enhance the Efficacy of Spodoptera littoralis Nucleopolyhedrovirus Suspoemulsion

IF 1.5 4区 农林科学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY
Ali Mehrvar, Solmaz Ghanbari, Gökhan Söylemezoğlu, Umut Toprak
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Abstract

This study evaluates the efficacy of Spodoptera littoralis nucleopolyhedrovirus (SpliNPV) and laboratory-synthesized carbon quantum dot nanoparticles (CQDNPs) against the second instar Spodoptera littoralis larvae under laboratory and greenhouse conditions. Individually, both SpliNPV and CQDNPs exhibited substantial lethality (91.6% and 83.3% at 1 × 108 OBs/ml and 700 mg/ml, respectively) (p < 0.05). The LC50 values were 1.88 × 105 OB/ml and 434.2 mg/mL, and the LT50 values were 8.9 and 9.8 days, respectively. Four LC-based combined treatments demonstrated significant additive effects, with the SpliNPV (LC50) + CQDNPs (LC25) combination achieving the optimum effect with a mortality rate of 86.3% and an LT50 value of 6.6 days, leading to its selection for the suspoemulsion nanoparticle (SENP) formulation. The SENP formulation displayed superior performance, achieving the highest mortality rates and fastest killing times across all environments: 89.0% in laboratory conditions, 83.3% on eggplant plants, and 76.6% on pepper plants. In contrast, the suspoemulsion (SE) and unformulated (UF) formulations showed lower efficacy, emphasizing the importance of formulation in enhancing the biological activity of SpliNPV. The LT50 values further supported these findings, with the SENP formulation demonstrating the shortest LT50 values, indicating faster lethality. A significant decrease in CHS-B, IIM2, PER3, REPAT14, and CDA1 expression was observed, particularly in the combined CQDNPs + SpliNPV treatment, while API expression increased significantly. These findings highlight the potential of nanoparticle-enhanced formulations like SENP, and integrating CQDNPs with SpliNPV can significantly enhance pest control efficacy.

Abstract Image

碳量子点纳米颗粒增强沿海夜蛾核型多角体病毒悬浊液的功效。
在实验室和温室条件下,研究了滨海夜蛾核型多角体病毒(SpliNPV)和实验室合成的碳量子点纳米颗粒(CQDNPs)对滨海夜蛾2龄幼虫的杀伤效果。SpliNPV和CQDNPs分别在1 × 108 OB/ml和700 mg/ml时具有较高的致死率(分别为91.6%和83.3%)(p 50分别为1.88 × 105 OB/ml和434.2 mg/ml, LT50分别为8.9和9.8 d)。四种以lc为基础的联合处理表现出显著的叠加效应,其中SpliNPV (LC50) + CQDNPs (LC25)联合处理效果最佳,死亡率为86.3%,LT50值为6.6天,因此选择了悬浮乳纳米颗粒(SENP)配方。SENP配方表现出优异的性能,在所有环境中均达到最高的死亡率和最快的杀灭时间:在实验室条件下为89.0%,在茄子植株上为83.3%,在辣椒植株上为76.6%。相比之下,悬浊液(SE)和未配制(UF)制剂的药效较低,说明了配方对提高SpliNPV生物活性的重要性。LT50值进一步支持了这些发现,SENP配方显示出最短的LT50值,表明更快的致死性。CHS-B、IIM2、PER3、REPAT14和CDA1的表达显著降低,特别是在CQDNPs + SpliNPV联合治疗中,而API的表达显著升高。这些发现突出了SENP等纳米颗粒增强制剂的潜力,将CQDNPs与SpliNPV结合可以显著提高害虫防治效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.30
自引率
4.50%
发文量
115
审稿时长
12 months
期刊介绍: Archives of Insect Biochemistry and Physiology is an international journal that publishes articles in English that are of interest to insect biochemists and physiologists. Generally these articles will be in, or related to, one of the following subject areas: Behavior, Bioinformatics, Carbohydrates, Cell Line Development, Cell Signalling, Development, Drug Discovery, Endocrinology, Enzymes, Lipids, Molecular Biology, Neurobiology, Nucleic Acids, Nutrition, Peptides, Pharmacology, Pollinators, Proteins, Toxicology. Archives will publish only original articles. Articles that are confirmatory in nature or deal with analytical methods previously described will not be accepted.
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