Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem 9190401, Israel.
The Center for Nanoscience and Nanotechnology, The Hebrew University of Jerusalem, Jerusalem 9190401, Israel.
Biomacromolecules. 2024 Feb 12;25(2):1018-1026. doi: 10.1021/acs.biomac.3c01092. Epub 2024 Jan 22.
With the growing concern over the environmental impact and health risks associated with conventional pesticides, there is a great need for developing safer and more sustainable alternatives. This study demonstrates the self-assembly of antimicrobial and antifungal spherical particles by a dipeptide utilizing a reduced amount of copper salt compared to the commonly employed formulation. The particles can be sprayed on a surface and form an antimicrobial coating. The effectiveness of the coating against the bacteria , a common pathogen affecting potato crops, was demonstrated, as the coating reduced the bacterial load by 7.3 log. Moreover, a comprehensive field trial was conducted, where the formulation was applied to potato seeds. Remarkably, it exhibited good efficacy against three prevalent potato pathogens (, spp., and ) while demonstrating no phytotoxic effects on the potatoes. These findings highlight the tremendous potential of this formulation as a nonphytotoxic alternative to replace hazardous pesticides currently available in the market.
随着人们对与传统农药相关的环境影响和健康风险的日益关注,开发更安全、更可持续的替代品的需求非常迫切。本研究展示了一种二肽通过利用比常用配方更少的铜盐自组装成具有抗菌和抗真菌作用的球形颗粒。这些颗粒可以喷涂在表面上形成抗菌涂层。研究表明,该涂层对细菌的有效性,细菌是一种常见的影响土豆作物的病原体,涂层减少了 7.3 个对数的细菌负荷。此外,还进行了一项全面的田间试验,将该制剂应用于土豆种子。值得注意的是,它对三种流行的土豆病原体( 、 spp. 和 )表现出良好的效果,同时对土豆没有植物毒性。这些发现凸显了该制剂作为一种非植物毒性替代品的巨大潜力,可以替代目前市场上危险的农药。