Laboratory of Renewable Resources Engineering (LORRE), Department of Agricultural and Biological Engineering, Purdue University, West Lafayette, Indiana 47907, United States.
Department of Agricultural and Biological Engineering, Purdue University, West Lafayette, Indiana 47907, United States.
ACS Nano. 2021 May 25;15(5):8338-8349. doi: 10.1021/acsnano.0c09759. Epub 2021 Apr 21.
, a broad host-range necrotrophic (BHN) phytopathogen, establishes compatible interactions with hosts by deploying multigene infection strategies, rendering simply inherited resistance ineffective to fight off this pathogen. Since essential oils (EOs) serve as intermediators during phytobiome communication, we hypothesize that they have the potential to enhance the quantitative disease resistance against BHN by eliciting the adaptive stress response (hormesis) in plants. However, using EOs is challenging due to their poor solubility in water. Nanoemulsification of EOs enhances not only the solubility of EOs but also their potency and stability. Here, we demonstrate the potential use of essential oil nanoemulsions (EONEs) to control infections caused by BHN. Using basic engineering principles of nanocarrier design, we demonstrate the efficacy of a robust EONEs design for controlling infection in a model plant, . Our nanoemulsion delivery system significantly enhanced the disease resistance of the host by reducing the necrotic area by up to 50% compared to untreated plants. RNA-seq analysis indicated that successful treatments upregulated autophagy, ROS scavenging, and activation of the jasmonic acid signaling pathway.
,一种广泛的坏死型(BHN)植物病原菌,通过部署多基因感染策略与宿主建立相容的相互作用,使简单遗传的抗性无效,无法抵御这种病原体。由于精油(EOs)在植物微生物组通讯中充当介质,我们假设它们有可能通过在植物中引发适应性应激反应(hormesis)来增强对 BHN 的定量疾病抗性。然而,由于其在水中的溶解度差,使用精油具有挑战性。精油纳米乳液(EONEs)的纳米乳化不仅增强了精油的溶解度,而且增强了其效力和稳定性。在这里,我们展示了使用精油纳米乳液(EONEs)来控制 BHN 引起的感染的潜力。使用纳米载体设计的基本工程原理,我们展示了一种强大的 EONEs 设计在控制模式植物 感染方面的功效。我们的纳米乳液输送系统通过将未处理植物的坏死面积减少多达 50%,显著提高了宿主的抗病能力。RNA-seq 分析表明,成功的治疗上调了自噬、ROS 清除和茉莉酸信号通路的激活。