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Supramolecular Nanoplatform Based on Mesoporous Silica Nanocarriers and Pillararene Nanogates for Fungus Control

机译:基于介孔二氧化硅纳米载体和用于真菌控制的硫烯纳米蛋白的超分子纳米纳米

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Synthetic fungicides have been widely used to protect crops from fungal diseases. However, excessive use of synthetic fungicides leads to the generation of fungicide resistance in fungal pathogens. Recently, smart cargo delivery systems have been introduced for the construction of a pesticide delivery nanoplatform, benefiting from their controlled release performance. Herein, a fungal pathogen microenvironment-responsive supramolecular fungicide nanoplatform has been designed and constructed, using quaternary ammonium salt (Q)-modified mesoporous silica nanoparticles (MSN-Q NPs) as nanocarriers loaded with berberine hydrochloride (BH) and carboxylatopillar[5]arene (CP[5]A) as nanogates to form BH-loaded CP[5][email?protected] NPs for effective inhibition of Botrytis cinerea . CP[5]A as nanogates can endow the fungicide nanoplatform with pH stimuli-responsive release features for the control of fungicide release. The loaded BH, as a natural plant fungicide, provides an ecofriendly alternative to synthetic fungicides for controlling B. cinerea . Interestingly, we use oxalic acid (OA) secreted by B. cinerea as a trigger so that BH can be released from the fungicide nanoplatform on demand under pathogen microenvironments for controlling B. cinerea . The experimental results indicate that the fabricated fungicide nanoplatform could effectively inhibit the mycelial growth and spore germination, providing a new way for the management of B. cinerea in actual application.
机译:合成杀菌剂已被广泛用于保护作物免受真菌病害。然而,过量使用合成杀菌剂会导致真菌病原体产生抗药性。最近,智能货物输送系统被引入到农药输送纳米平台的构建中,受益于其控制释放性能。在此,我们设计并构建了一个真菌病原体微环境响应型超分子杀菌剂纳米平台,使用季铵盐(Q)修饰的介孔二氧化硅纳米颗粒(MSN-Q NPs)作为纳米载体,负载盐酸小檗碱(BH)和羧基柱[5]芳烃(CP[5]A)作为纳米门,形成BH负载的CP[5][E?保护的]NPs,有效抑制灰霉病菌。CP[5]A as纳米门可以赋予杀菌剂纳米平台pH刺激响应释放特性,用于控制杀菌剂释放。负载BH作为一种天然植物杀菌剂,为防治B.灰霉病提供了一种生态友好的合成杀菌剂替代品。有趣的是,我们使用B.cinerea分泌的草酸(OA)作为触发器,以便BH可以在病原体微环境下根据需要从杀菌剂纳米平台释放,以控制B.cinerea。实验结果表明,所制备的杀菌剂纳米平台能有效抑制菌丝生长和孢子萌发,为实际应用中的灰霉病菌管理提供了一条新途径。

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