Department of Bio & Nano Technology, Guru Jambheshwar University of Science & Technology, Hisar, India.
Physics Department, Punjab Engineering College (Deemed to be University), Chandigarh, India.
Pest Manag Sci. 2024 Feb;80(2):452-462. doi: 10.1002/ps.7776. Epub 2023 Oct 4.
The study of carvacrol plant antibacterial components has recently become a hot topic in modern farming. Carvacrol industrial applications are restricted by their physicochemical instability and partial solubility in water. In the present study, an ultrasonic emulsification method was used to prepare a carvacrol nanoemulsion (CAR-NE) employing nonionic surfactants. The CAR-NE was characterized using a dynamic light scattering (DLS) instrument and transmission electron microscopy (TEM). The goal of this work was nanoencapsulation of carvacrol to improve its aqueous solubility and preservation of the encapsulated compound against climatic conditions. Another aim of the present study was the evaluation of the growth-promoting effects and antibacterial potential of CAR-NE against bacterial leaf blight of cluster bean.
CAR-NE showed a hydrodynamic diameter, ZP and PDI index of 43.88 ± 4.30 nm, -47.8 ± 0.23 mV and 0.246 ± 0.04, respectively. The spherical shape morphology of CAR-NE was confirmed by TEM imaging. Minimum inhibitory concentrations (MIC) and minimum bactericidal concentrations (MBC) of the CAR-NE were 20 and 160 μL mL (respectively) against Xanthomonas axonopodis pv. cyamopsidis. Additionally, the antibacterial potential of CAR-NE was evaluated for controlling bacterial blight of cluster bean in fields. The disease severity in the negative control plants (water) was 84%, but that in the CAR-NE 160 (μL mL ) was remarkably low at 14%, nearly the same as the positive control (streptomycin sulfate).
The shelf-life of CAR-NE was 2 months at room temperature without any appreciable changes in hydrodynamic diameter and zeta potential. Consequently, plants treated with CAR-NE 160 showed substantial improvement in plant growth. © 2023 Society of Chemical Industry.
研究香芹酚植物抗菌成分最近已成为现代养殖的热门话题。香芹酚的工业应用受到其物理化学不稳定性和部分水溶性的限制。在本研究中,采用非离子表面活性剂通过超声乳化法制备香芹酚纳米乳液(CAR-NE)。采用动态光散射(DLS)仪和透射电子显微镜(TEM)对 CAR-NE 进行了表征。本工作的目的是纳米封装香芹酚以提高其水溶解度,并保护封装化合物免受气候条件的影响。本研究的另一个目的是评价 CAR-NE 对豇豆花叶病菌的促生长作用和抗菌潜力。
CAR-NE 的水动力学直径、ZP 和 PDI 指数分别为 43.88 ± 4.30nm、-47.8 ± 0.23mV 和 0.246 ± 0.04。TEM 成像证实了 CAR-NE 的球形形态。CAR-NE 对黄单胞菌的最低抑菌浓度(MIC)和最低杀菌浓度(MBC)分别为 20 和 160μL mL。此外,还评估了 CAR-NE 对田间豇豆花叶病的抗菌潜力。阴性对照(水)植株的病情严重度为 84%,而 CAR-NE 160(μL mL)的病情严重度则显著降低至 14%,与阳性对照(硫酸链霉素)几乎相同。
CAR-NE 在室温下的保质期为 2 个月,水动力学直径和 Zeta 电位没有任何明显变化。因此,用 CAR-NE 160 处理的植物在植物生长方面有了显著的改善。 © 2023 化学工业协会。