From dansyl-modified biofilm disruptors to β-cyclodextrin-optimized multifunctional supramolecular nanovesicles: their improved treatment for plant bacterial diseases.

IF 12.6 1区 生物学 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Journal of Nanobiotechnology Pub Date : 2024-11-28 DOI:10.1186/s12951-024-03028-9
Hui-Ling Zhang, Hong-Wei Wang, Jing-Han Yang, Jia-Jia Chen, Juan Liu, Qing-Chuan Shi, Hai-Cong Zhao, Mo-Xian Chen, Run Yang, Qing-Tian Ji, Pei-Yi Wang
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Abstract

Background: Bacterial diseases caused by phytopathogenic Xanthomonas pose a significant threat to global agricultural production, causing substantial economic losses. Biofilm formation by these bacteria enhances their resistance to environmental stressors and chemical treatments, complicating disease control. The key to overcoming this challenge lies in the development of multifunctional green bactericides capable of effectively breaking down biofilm barriers, improving foliar deposition properties, and achieving the control of bacterial diseases.

Results: We have developed a kind of innovative green bactericide from small-molecule conception to eco-friendly supramolecular nanovesicles (DaPA8@β -CD) by host-guest supramolecular technology. These nanoscale assemblies demonstrated the ability to inhibit and eradicate biofilm formation, while also promoted foliar wetting and effective deposition properties, laying the foundation for improving agrochemical utilization. Studies revealed that DaPA8@β -CD exhibited significant biofilm inhibition (78.66% at 7.0 µ g mL- 1) and eradication (83.50% at 25.0 µ g mL- 1), outperforming DaPA8 alone (inhibition: 59.71%, eradication: 66.79%). These nanovesicles also reduced exopolysaccharide formation and bacterial virulence. In vivo experiments showed enhanced control efficiency against citrus bacterial canker (protective: 78.04%, curative: 50.80%) at a low dose of 200 µ g mL- 1, superior to thiodiazole-copper-20%SC and DaPA8 itself.

Conclusion: This study demonstrates the potential of DaPA8@β -CD nanovesicles as multifunctional bactericides for managing Xanthomonas -induced plant diseases, highlighting the advantages of using host-guest supramolecular technology to enhance agrochemical bioavailability.

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从丹酰修饰的生物膜破坏物到β-环糊精优化的多功能超分子纳米囊泡:它们对植物细菌性疾病的改进治疗。
背景:由植物致病性黄单胞菌引起的细菌性疾病对全球农业生产构成重大威胁,造成重大经济损失。这些细菌形成的生物膜增强了它们对环境压力和化学处理的抵抗力,使疾病控制复杂化。克服这一挑战的关键在于开发能够有效打破生物膜屏障、改善叶面沉积特性和实现细菌性疾病控制的多功能绿色杀菌剂。结果:我们利用主-客体超分子技术开发了一种从小分子概念到环保超分子纳米囊泡的创新型绿色杀菌剂(DaPA8@β -CD)。这些纳米级组件显示出抑制和根除生物膜形成的能力,同时还促进了叶片润湿和有效沉积特性,为提高农用化学品利用率奠定了基础。研究表明,DaPA8@β - cd具有显著的生物膜抑制作用(7.0µg mL- 1时78.66%)和根除作用(25.0µg mL- 1时83.50%),优于单独使用DaPA8(抑制作用:59.71%,根除作用:66.79%)。这些纳米囊泡也减少了胞外多糖的形成和细菌的毒力。体内实验结果表明,低剂量200 μ g mL- 1对柑桔细菌性溃疡病的防治效果(保护率78.04%,治愈率50.80%)优于硫代二唑-铜-20% sc和DaPA8本身。结论:该研究证明了DaPA8@β -CD纳米囊泡作为防治黄单胞菌诱导的植物病害的多功能杀菌剂的潜力,突出了利用主-客超分子技术提高农用化学生物利用度的优势。
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来源期刊
Journal of Nanobiotechnology
Journal of Nanobiotechnology BIOTECHNOLOGY & APPLIED MICROBIOLOGY-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
13.90
自引率
4.90%
发文量
493
审稿时长
16 weeks
期刊介绍: Journal of Nanobiotechnology is an open access peer-reviewed journal communicating scientific and technological advances in the fields of medicine and biology, with an emphasis in their interface with nanoscale sciences. The journal provides biomedical scientists and the international biotechnology business community with the latest developments in the growing field of Nanobiotechnology.
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