National Key Laboratory for Germplasm Innovation & Utilization of Horticultural Crops, The Center of Crop Nanobiotechnology, College of Plant Science & Technology, Huazhong Agricultural University, Wuhan, 430070, China.
Hubei Hongshan Laboratory, Wuhan, 430070, China.
J Nanobiotechnology. 2024 Jul 29;22(1):446. doi: 10.1186/s12951-024-02733-9.
Bacterial diseases are one of the most common issues that result in crop loss worldwide, and the increasing usage of chemical pesticides has caused the occurrence of resistance in pathogenic bacteria and environmental pollution problems. Nanomaterial mediated gene silencing is starting to display powerful efficiency and environmental friendliness for improving plant disease resistance. However, the internalization of nanomaterials and the physiological mechanisms behind nano-improved plant disease resistance are still rarely understood. We engineered the polyethyleneimine (PEI) functionalized gold nanoparticles (PEI-AuNPs) with fluorescent properties and ROS scavenging activity to act as siRNA delivery platforms. Besides the loading, protection, and delivery of nucleic acid molecules in plant mature leaf cells by PEI-AuNPs, its fluorescent property further enables the traceability of the distribution of the loaded nucleic acid molecules in cells. Additionally, the PEI-AuNPs-based RNAi delivery system successfully mediated the silencing of defense-regulated gene AtWRKY1. Compared to control plants, the silenced plants performed better resistance to Pseudomonas syringae, showing a reduced bacterial number, decreased ROS content, increased antioxidant enzyme activities, and improved chlorophyll fluorescence performance. Our results showed the advantages of AuNP-based RNAi technology in improving plant disease resistance, as well as the potential of plant nanobiotechnology to protect agricultural production.
细菌病害是导致全球作物减产的最常见问题之一,而化学农药的大量使用导致了病原菌的抗药性和环境污染问题的发生。纳米材料介导的基因沉默在提高植物抗病性方面开始显示出强大的效率和环境友好性。然而,纳米材料的内化及其增强植物抗病性的生理机制仍知之甚少。我们用具有荧光性质和 ROS 清除活性的聚乙烯亚胺(PEI)功能化金纳米粒子(PEI-AuNPs)来作为 siRNA 的递送平台。PEI-AuNPs 不仅可以在植物成熟叶片细胞中负载、保护和递送核酸分子,其荧光性质还可以进一步追踪负载核酸分子在细胞中的分布。此外,基于 PEI-AuNPs 的 RNAi 递送系统成功介导了防御调节基因 AtWRKY1 的沉默。与对照植物相比,沉默植物对丁香假单胞菌的抗性更好,表现为细菌数量减少、ROS 含量降低、抗氧化酶活性增加和叶绿素荧光性能改善。我们的结果表明,基于 AuNP 的 RNAi 技术在提高植物抗病性方面具有优势,同时也展示了植物纳米生物技术在保护农业生产方面的潜力。