Key Laboratory of Green Prevention and Control on Fruits and Vegetables in South China of Ministry of Agriculture and Rural Affairs, Key Laboratory of Agricultural Green Fine Chemicals of Guangdong Higher Education Institution, Innovative Institute for Plant Health, School of Chemistry and Chemical Engineering, Zhongkai University of Agriculture and Engineering, Guangzhou, Guangdong 510225, PR China.
ACS Appl Bio Mater. 2024 Mar 18;7(3):1643-1655. doi: 10.1021/acsabm.3c01100. Epub 2024 Feb 17.
Pathogens and pests pose significant threats to global crop productivity and plant immunity, necessitating urgent measures from researchers to prevent pathogen contamination and pest damage to crops. A natural plant-based antibacterial agent, eugenol (EUG), has demonstrated excellent antimicrobial and insect repellent capabilities, but the characteristics of volatilization and poor dissolution limit the practical application. The nanoization of pesticide formulations holds promise in the development of highly effective pesticides for antibacterial and insecticidal purposes. Herein, a eugenol-loaded nano delivery system (EUG@CMC-PGMA-CS) was synthesized using glycidyl methacrylate (GMA) as a functional monomer to connect carrier core structure carboxymethyl cellulose (CMC) with shell structure chitosan (CS), and EUG was encapsulated within the carrier. EUG@CMC-PGMA-CS demonstrated excellent leaf affinity, with minimum contact angles (CAs) of 37.83 and 70.52° on hydrophilic and hydrophobic vegetable leaf surfaces, respectively. Moreover, the maximum liquid holding capacity (LHC) of EUG@CMC-PGMA-CS on both hydrophilic and hydrophobic vegetable leaf surfaces demonstrates a noteworthy 55.24% enhancement compared to the LHC of pure EUG. The release curve of EUG@CMC-PGMA-CS exhibited an initial burst followed by stable sustained release. It is with satisfaction that the nano delivery system demonstrated exceptional antibacterial properties against and satisfactory insecticidal efficacy against . The development of this eugenol-loaded nano delivery system holds significant potential for enhanced antibacterial and insect repellents in agriculture, paving the way for the application of volatile bioactive substances.
病原体和害虫对全球作物生产力和植物免疫力构成重大威胁,研究人员需要采取紧急措施,防止病原体污染和害虫对作物的损害。天然植物源抗菌剂丁香酚(EUG)具有优异的抗菌和驱虫性能,但挥发性和溶解性差的特点限制了其实际应用。农药制剂的纳米化有望开发出高效的抗菌和杀虫农药。在此,我们采用甲基丙烯酸缩水甘油酯(GMA)作为功能单体,将载体核结构羧甲基纤维素(CMC)与壳结构壳聚糖(CS)连接,合成了负载丁香酚的纳米递药系统(EUG@CMC-PGMA-CS),并将 EUG 包裹在载体中。EUG@CMC-PGMA-CS 表现出优异的叶片亲和力,在亲水和疏水蔬菜叶片表面的最小接触角(CA)分别为 37.83°和 70.52°。此外,EUG@CMC-PGMA-CS 在亲水和疏水蔬菜叶片表面的最大液体保持能力(LHC)分别比纯 EUG 的 LHC 提高了 55.24%。EUG@CMC-PGMA-CS 的释放曲线呈现出初始突释随后稳定持续释放的特点。令人满意的是,该纳米递药系统对表现出优异的抗菌性能,对也表现出令人满意的杀虫效果。负载丁香酚的纳米递药系统的开发为增强农业中的抗菌和驱虫性能提供了巨大潜力,为挥发性生物活性物质的应用铺平了道路。