PG Research Centre Botany, PDEA's Prof. Ramkrishna More ACS College, Akurdi, Pune, Maharashtra, India.
Department of Botany, Amruteshwar Art's, Commerce, and Science College, Vinzar, Velha, Pune, Maharashtra, India.
Environ Res. 2022 Sep;212(Pt D):113543. doi: 10.1016/j.envres.2022.113543. Epub 2022 May 22.
Nanotechnology has a wide range of agricultural applications, with emphasize on the development of novel nano-agrochemicals such as, nano-fertilizer and nano-pesticides. It has a significant impact on sustainable agriculture by increasing agricultural productivity, while reducing the use of inorganic fertilizers, pesticides, and herbicides. Nano-coating delivery methods for agrochemicals have improved agrochemical effectiveness, safety, and consistency. Biosynthesis of nanoparticles (NPs) has recently been recognized as an effective tool, contrary to chemically derived NPs, for plant abiotic and biotic stress control, and crop improvement. In this regard, fungi have tremendous scope and importance for producing biogenic NPs of various sizes, shapes, and characteristics. Fungi are potential candidates for synthesis of biogenic NPs due to their enhanced bioavailability, biological activity, and higher metal tolerance. However, their biomimetic properties and high capacity for dispersion in soil, water environments, and foods may have negative environmental consequences. Furthermore, their bioaccumulation raises significant concerns about the novel properties of nanomaterials potentially causing adverse biological effects, including toxicity. This review provides a concise outline of the growing role of fungal-mediated metal NPs synthesis, its potential applications in crop field, and associated issues of nano-pollution in soil and its future implications.
纳米技术在农业中有广泛的应用,重点是开发新型纳米农用化学品,如纳米肥料和纳米农药。它通过提高农业生产力,同时减少无机肥料、农药和除草剂的使用,对可持续农业有重大影响。纳米涂层的农用化学品输送方法提高了农用化学品的效果、安全性和一致性。最近,人们认识到纳米颗粒(NPs)的生物合成是一种有效的工具,与化学衍生的 NPs 相比,可用于控制植物的非生物和生物胁迫以及作物改良。在这方面,真菌在生产各种大小、形状和特性的生物源 NPs 方面具有巨大的潜力和重要性。真菌是合成生物源 NPs 的潜在候选物,因为它们具有增强的生物利用度、生物活性和更高的金属耐受性。然而,它们的仿生特性和在土壤、水和食品环境中的高分散能力可能会产生负面的环境后果。此外,它们的生物积累引起了人们对纳米材料潜在的新特性可能导致不良生物效应,包括毒性的关注。本综述简要概述了真菌介导的金属 NPs 合成的作用不断增加,及其在作物领域的潜在应用,以及与土壤纳米污染相关的问题及其未来的影响。