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基于铜和锌的配位聚合物用于开发更高效的农用化学品。

Copper- and Zinc-Based Coordination Polymers toward the Development of More Efficient Agrochemicals.

作者信息

Morales-Cámara Samuel, Choquesillo-Lazarte Duane, Fernández Belen, Rodríguez-Diéguez Antonio, Salcedo-Abraira Pablo, Rojas Sara

机构信息

Department of Inorganic Chemistry, Faculty of Science, University of Granada, Av. Fuente Nueva s/n, Granada 18071, Spain.

Laboratorio de Estudios Cristalográficos, IACT-CSIC, Av. Las Palmeras, 4, Granada, 18100, Spain.

出版信息

ACS Omega. 2025 Mar 16;10(11):11274-11281. doi: 10.1021/acsomega.4c10977. eCollection 2025 Mar 25.

DOI:10.1021/acsomega.4c10977
PMID:40160769
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11947799/
Abstract

Inorganic agrochemicals have been used by the food industry for thousands of years to maximize production and quality, with copper(II) sulfate being one of the main used pesticides. Given the increasing global population (expected to reach 9.6 billion by 2050) and the challenges facing agricultural production, there is a pressing need to address the impact of intensified agrochemical use (e.g., soil and water contamination, human health risk, pesticide resistance, etc.). Coordination polymers (CPs) as agrochemicals offer several significant advantages compared to traditional agrochemicals, such as the controlled release of the active ingredients in the target zone and reduced toxic doses released to environment. In this work, the plant growth regulator 3-indolepropanoic acid (IPA), which stimulates root initiation and elongation, is used as a chelating agent of Cu and Zn metal ions, both known for their antibacterial and antifungal properties, to obtain two crystalline CPs, named Cu-IPA [Cu(HCNO)] and Zn-IPA [Zn(HCNO)(HO)] . Their role as potential antibacterial agents was evaluated. First, the stability of these materials was studied, showing a fast release of both cations (100% after 8 and 3 h for Cu-IPA and Zn-IPA, respectively) in aqueous solution. The antibacterial test against , a bacterium involved in many farm animal infections, evidenced a notable growth inhibition, with values of inhibition of the colony forming unit (CFU) for Cu-IPA of 10.2 and 26.2% and for Zn-IPA of 2.1 and 5.3% at 500 and 1500 ppm, respectively. This study highlights the potential of CPs for enhancing efficiency and sustainability of inorganic agrochemicals in agriculture.

摘要

数千年来,食品工业一直使用无机农用化学品来实现产量和质量最大化,硫酸铜(II)是主要使用的农药之一。鉴于全球人口不断增加(预计到2050年将达到96亿)以及农业生产面临的挑战,迫切需要解决农用化学品使用强度增加带来的影响(例如土壤和水污染、人类健康风险、抗药性等)。与传统农用化学品相比,配位聚合物(CPs)作为农用化学品具有几个显著优势,例如活性成分在目标区域的控释以及释放到环境中的有毒剂量减少。在这项工作中,刺激根系起始和伸长的植物生长调节剂3-吲哚丙酸(IPA)被用作铜和锌金属离子的螯合剂,这两种金属离子均以其抗菌和抗真菌特性而闻名,以获得两种结晶CPs,分别命名为Cu-IPA [Cu(HCNO)] 和Zn-IPA [Zn(HCNO)(HO)] 。评估了它们作为潜在抗菌剂的作用。首先,研究了这些材料的稳定性,结果表明两种阳离子在水溶液中均快速释放(Cu-IPA和Zn-IPA分别在8小时和3小时后100%释放)。针对一种涉及许多农场动物感染的细菌进行的抗菌测试表明,有显著的生长抑制,在500 ppm和1500 ppm时,Cu-IPA对菌落形成单位(CFU)的抑制值分别为10.2%和26.2%以及Zn-IPA为2.1%和5.3%。这项研究突出了配位聚合物在提高农业中无机农用化学品的效率和可持续性方面的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/9eb7b661c762/ao4c10977_0006.jpg
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https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/9eb7b661c762/ao4c10977_0006.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/5b62a8e06877/ao4c10977_0001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/abfe083dd538/ao4c10977_0002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/44ebbed66f1e/ao4c10977_0003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/53d4/11947799/1e20879be4f9/ao4c10977_0004.jpg
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