创新控制瓜类白粉病:纳米封装dsRNA与低剂量杀菌剂相结合的可持续作物保护。

IF 4.4 2区 农林科学 Q1 PLANT SCIENCES
Nisrine Bakhat, Yandira Morales, David Fernández-Salvatierra, Leonardo Velasco, Alejandro Perez-Garcia, Dolores Fernandez-Ortuno
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引用次数: 0

摘要

抗杀菌剂病原体的增加和日益严格的管理框架增加了对植物病害控制中可持续替代品的需求。本研究评估了针对SdhC的喷雾诱导基因沉默(SIGS)的潜力,SdhC是线粒体琥珀酸脱氢酶(SDH)复合物的一个关键亚基,也是SDHI杀菌剂抗性的决定因素,用于控制葫芦白粉病的致病因子——黄氏Podosphaera xanthii。为了验证该方法的有效性,我们首先将PxSdhC双链RNA (dsRNA)渗透到甜瓜子叶中,导致真菌生物量减少65%,SdhC基因表达减少60%,验证了其在SIGS应用中的有效性。这项研究的一个关键成果是,当与PxSdhC-dsRNA联合使用时,SDHI杀菌剂的剂量大大减少,可以实现强有力的疾病控制,这为该策略的协同潜力提供了第一个直接证据。在这些结果的基础上,进行了温室试验,其中dsRNA以裸形式和碳点(CD)纳米封装形式单独或与低剂量的SDHI杀菌剂boscalid和fluopyram联合使用。纳米胶囊化增强了dsRNA的稳定性,延长了基因沉默效果,在接种后14天和21天分别实现了69%和53%的疾病抑制。此外,PxSdhC-dsRNA-CD与低剂量杀菌剂联合处理显示出协同效应,疾病抑制范围为33%至91%,具体取决于分离物的耐药水平。敏感和低耐药的分离株反应有效,而高耐药的分离株疗效下降。体外特异性实验证实,PxSdhC-dsRNA可选择性抑制与SdhC序列高度同源的灰霉病菌(Botrytis cinerea),不影响无关真菌。总之,这些结果突出了基因靶向、纳米配方dsRNA作为一种有效、精确和环境友好的综合疾病管理策略的前景,能够提高低剂量杀菌剂应用的性能并减少化学投入。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Innovative control of the cucurbit powdery mildew: Combining nanoencapsulated dsRNA and low-dose fungicides for sustainable crop protection.

The rise of fungicide-resistant pathogens and increasingly strict regulatory frameworks have heightened the demand for sustainable alternatives in plant disease control. This study assesses the potential of spray-induced gene silencing (SIGS) targeting SdhC, a critical subunit of the mitochondrial succinate dehydrogenase (SDH) complex and determinant of SDHI fungicide resistance, for managing Podosphaera xanthii, the causal agent of cucurbit powdery mildew. To evaluate this approach, PxSdhC double-stranded RNA (dsRNA) was initially infiltrated into melon cotyledons, resulting in a 65% reduction in fungal biomass and a 60% decrease in SdhC gene expression, validating its effectiveness for SIGS applications. A key achievement of this study was the demonstration that strong disease control can be achieved with substantially reduced doses of SDHI fungicides when combined with PxSdhC-dsRNA, providing the first direct evidence of the synergistic potential of this strategy. Building on these results, greenhouse trials were conducted in which dsRNA was applied in both naked and carbon dot (CD)-nanoencapsulated forms, alone or in combination with low doses of the SDHI fungicides boscalid and fluopyram. Nanoencapsulation enhanced dsRNA stability and extended gene silencing effects, achieving up to 69% and 53% disease suppression at 14- and 21-days post-inoculation, respectively. Moreover, combined treatments with PxSdhC-dsRNA-CD and low-dose fungicides exhibited synergistic effects, with disease suppression ranging from 33% to 91%, depending on isolate resistance levels. Sensitive and low-resistance isolates responded effectively, while efficacy declined in highly resistant ones. In vitro specificity assays confirmed that PxSdhC-dsRNA selectively inhibited Botrytis cinerea, a species with high SdhC sequence homology, without affecting unrelated fungi. Altogether, these results highlight the promise of gene-targeted, nanoformulated dsRNA as an effective, precise, and environmentally friendly strategy for integrated disease management, capable of boosting the performance of low-dose fungicide applications and reducing chemical input.

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来源期刊
Plant disease
Plant disease 农林科学-植物科学
CiteScore
5.10
自引率
13.30%
发文量
1993
审稿时长
2 months
期刊介绍: Plant Disease is the leading international journal for rapid reporting of research on new, emerging, and established plant diseases. The journal publishes papers that describe basic and applied research focusing on practical aspects of disease diagnosis, development, and management.
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