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银纳米颗粒对香蕉品种生理、胁迫及矿物质吸收的影响以及温室效应。

Effects of silver nanoparticles on the physiology, stress, and mineral uptake of banana cultivars and greenhouse.

作者信息

Mendoza Natalia, Hidalgo Karen, Troya Lorena, Sánchez-Timm Eduardo, Vielma Joel, Vanegas María Eulalia, Bogdanchikova Nina, Pestryakov Alexey, Chong Pablo

机构信息

ESPOL Polytechnic University, ESPOL, Facultad de Ciencias Naturales y Matemáticas, Departamento de Ciencias Químicas y Ambientales, Campus Gustavo Galindo, Guayaquil, Ecuador.

ESPOL Polytechnic University, Escuela Superior Politécnica del Litoral, Centro de Investigaciones Biotecnológicas del Ecuador, Guayaquil, Ecuador.

出版信息

Front Plant Sci. 2025 Aug 12;16:1527137. doi: 10.3389/fpls.2025.1527137. eCollection 2025.

Abstract

INTRODUCTION

This study explores the effects of silver nanoparticles (AgNPs) from the formulation Argovit™ on physiological stress responses and mineral uptake in banana cultivars, both and under greenhouse conditions. These specific AgNPs have been previously studied for their antifungal activity against , highlighting their potential as a disease control agent in banana cultivation. Evaluating their phytotoxicity is crucial to determine safe application levels, particularly at the concentrations previously shown to be effective.

METHODS

The primary objective is to expose the phytotoxic effects, nutrient uptake, and translocation mechanisms of AgNPs based on their application method, either foliar or drench.

RESULTS AND DISCUSSION

experiments on the Cavendish banana var. Williams, with shoots cultured in media supplemented with AgNPs at concentrations of 0, 25, 50, 100, and 1000 mg L, showed significant reductions in shoot formation, length, chlorophyll content, and leaf number as AgNP concentrations increased. Rooting experiments revealed similar trends with high AgNP concentrations resulting in a decreasing root number and size. Greenhouse experiments on Gros Michel bananas, evaluating AgNP uptake through foliar and drench applications at 0, 25, 50, and 100 mg L, monitored over a month, showed no statistically significant differences in growth parameters between treated plants and controls. However, tissue analysis revealed higher leaf Ag concentrations than roots and stems. The study also analyzed antioxidant gene expression via qPCR, targeting genes such as (superoxide dismutase), (catalase) (ascorbate peroxidase), and (glutathione peroxidase), showing altered profiles in response to AgNP exposure and indicating induced oxidative stress. This research underscores the complex interactions between AgNPs and banana plants, emphasizing the need for further study to optimize safe and effective AgNP application in agriculture, balancing crop protection and environmental safety.

摘要

引言

本研究探讨了配方产品Argovit™中的银纳米颗粒(AgNP)对香蕉品种在水培和温室条件下生理应激反应及矿物质吸收的影响。此前已对这些特定的银纳米颗粒针对[具体真菌名称未给出]的抗真菌活性进行了研究,突出了它们作为香蕉种植中病害控制剂的潜力。评估其植物毒性对于确定安全施用水平至关重要,尤其是在先前显示有效的浓度下。

方法

主要目的是基于叶面喷施或灌根的施用方法,揭示银纳米颗粒的植物毒性效应、养分吸收及转运机制。

结果与讨论

对威廉姆斯卡文迪什香蕉品种进行的水培实验,在添加浓度为0、25、50、100和1000 mg/L银纳米颗粒的培养基中培养芽,结果显示随着银纳米颗粒浓度增加,芽的形成、长度、叶绿素含量和叶片数量显著减少。生根实验呈现出类似趋势,高浓度银纳米颗粒导致根数和根大小减少。对大麦克香蕉进行的温室实验,评估了0、25、50和100 mg/L浓度下通过叶面喷施和灌根施用银纳米颗粒的情况,在一个月的监测期内,处理过的植株与对照植株在生长参数上没有统计学显著差异。然而,组织分析表明叶片中的银浓度高于根和茎。该研究还通过定量聚合酶链反应(qPCR)分析了抗氧化基因表达,靶向超氧化物歧化酶(SOD)、过氧化氢酶(CAT)、抗坏血酸过氧化物酶(APX)和谷胱甘肽过氧化物酶(GPX)等基因,结果显示基因表达谱因银纳米颗粒暴露而改变,表明诱导了氧化应激。本研究强调了银纳米颗粒与香蕉植株之间复杂的相互作用,强调需要进一步研究以优化农业中银纳米颗粒的安全有效施用,平衡作物保护和环境安全。

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