Department of Plant Pathology, Faculty of Agriculture, Kasetsart University, 50 Ngam Wong Wan Rd, Ladyaow Chatuchak, Bangkok 10900, Thailand.
Department of Electrical Engineering, Faculty of Engineering, Kasetsart University, 50 Ngam Wong Wan Rd, Ladyaow Chatuchak, Bangkok 10900, Thailand.
ACS Appl Bio Mater. 2024 Mar 18;7(3):1469-1477. doi: 10.1021/acsabm.3c00862. Epub 2024 Jan 17.
The prevalence of plant diseases caused by pathogens such as pv (Xcc) poses a significant challenge to sustainable agriculture, necessitating the development of effective and eco-friendly disinfection methods. In this study, we investigated the efficacy of electrohydraulic discharge plasma (EHDP) as a promising alternative for disinfection against Xcc, a pathogen responsible for black rot in cruciferous vegetables. Unlike conventional gas-phase plasma, EHDP introduces two pivotal components: gas-liquid interface plasma (GLIP) and its consequential byproduct, plasma-activated water (PAW). While GLIP enables dual-phase production of reactive oxygen and nitrogen species (RONS), PAW is a reservoir of liquid-phase long-lived RONS, thereby enhancing its bactericidal efficacy. In our evaluations, we tested EHDP-induced GLIP and EHDP-induced PAW against Xcc cells in both (Xcc suspension) and (Xcc-inoculated cabbage seeds) settings, achieving noteworthy results. Within 15 min, these methods eliminated ∼98% of the Xcc cells in suspension. For assessments, nontreated seeds exhibited an infection rate of 98%. In contrast, both EHDP treatments showed a significant reduction, with ∼60% fewer seeds infected while maintaining ∼90% germination rate. In addition, the liquid-phase RONS in EHDP-PAW may enhance seed vigor with a faster germination rate within the initial 5 days. Remarkably, around 90% of EHDP-PAW-treated seeds yielded healthy seedlings, indicating dual benefits in bacterial suppression and seed growth stimulation. In contrast, the percentage of healthy seedlings from nontreated, Xcc-inoculated seeds was approximately 70%. Our research demonstrates the feasibility of using eco-friendly EHDP in the seed disinfection process.
病原菌(如 pv (Xcc))引起的植物病害的流行对可持续农业构成了重大挑战,因此需要开发有效且环保的消毒方法。在这项研究中,我们研究了电液压放电等离子体(EHDP)作为一种有前途的消毒替代方法,以对抗引起十字花科蔬菜黑腐病的病原菌 Xcc。与传统的气相等离子体不同,EHDP 引入了两个关键组件:气液界面等离子体(GLIP)及其后续产物等离子体激活水(PAW)。GLIP 能够产生双相的活性氧和氮物种(RONS),而 PAW 则是液相长寿命 RONS 的储库,从而增强其杀菌效果。在我们的评估中,我们在(Xcc 悬浮液)和(Xcc 接种的白菜种子)中测试了 EHDP 诱导的 GLIP 和 EHDP 诱导的 PAW 对 Xcc 细胞的作用,取得了显著的结果。在 15 分钟内,这些方法消除了悬浮液中约 98%的 Xcc 细胞。对于 评估,未经处理的种子的感染率为 98%。相比之下,EHDP 处理都显著降低了感染率,感染的种子减少了约 60%,而发芽率保持在 90%左右。此外,EHDP-PAW 中的液相 RONS 可能会增强种子活力,在最初的 5 天内提高更快的发芽率。值得注意的是,约 90%的 EHDP-PAW 处理的种子产生了健康的幼苗,表明在抑制细菌和刺激种子生长方面具有双重益处。相比之下,未处理、Xcc 接种的种子中健康幼苗的比例约为 70%。我们的研究证明了在种子消毒过程中使用环保的 EHDP 的可行性。