Institute of Microbiology, Government College University, Faisalabad, Pakistan.
Department of Zoology, Government College University, Faisalabad, Pakistan.
Sci Prog. 2023 Oct-Dec;106(4):368504231221672. doi: 10.1177/00368504231221672.
Phytonanotechnology plays a crucial part in the production of good quality and high-yield food. It can also alter the plant's production systems, hence permitting the efficient, controlled and stable release of agrochemicals such as fertilizers and pesticides. An advanced understanding of nanomaterials interaction with plant responses like localization and uptake, etc. could transfigure the production of crops with high disease resistance and efficient nutrients utilization. In agriculture, the use of nanomaterials has gained acceptance due to their wide-range applications. However, their toxicity and bioavailability are the major hurdles for their massive employment. Undoubtedly, nanoparticles positively influence seeds germination, growth and development, stress management and post-harvest handling of vegetables and fruits. These nanoparticles may also cause toxicity in plants through oxidative stress by generation of excessive reactive oxygen species thus affecting the cellular biomolecules and targeting different channels. Nanoparticles have shown to exert various effects on plants that are mainly affected by various attributes such as physicochemical features of nanomaterials, coating materials for nanoparticles, type of plant, growth stages and growth medium for plants. This article discusses the interaction, accretion and toxicity of nanomaterials in plants. The factors inducing nanotoxicity and the mechanisms followed by nanomaterials causing toxicity are also instructed. At the end, detoxification mechanism of plant is also presented.
植物纳米技术在生产高质量和高产量的食品方面发挥着至关重要的作用。它还可以改变植物的生产系统,从而允许高效、可控和稳定地释放化肥和农药等农用化学品。深入了解纳米材料与植物反应(如定位和吸收等)的相互作用,可以改变具有高抗病性和高效养分利用的作物的生产方式。在农业中,由于纳米材料具有广泛的应用,因此已经被接受。然而,其毒性和生物利用度是大规模应用的主要障碍。毫无疑问,纳米颗粒通过产生过多的活性氧物种来影响细胞生物分子并靶向不同的通道,从而积极影响种子的发芽、生长和发育、应激管理以及蔬菜和水果的采后处理。这些纳米颗粒也可能通过氧化应激对植物产生毒性,从而影响细胞生物分子并靶向不同的通道。纳米颗粒对植物的影响表现出多样性,主要受到纳米材料的物理化学特性、纳米颗粒的涂层材料、植物的类型、植物的生长阶段和生长介质等各种属性的影响。本文讨论了纳米材料在植物中的相互作用、积累和毒性。还介绍了诱导纳米毒性的因素以及纳米材料引起毒性的机制。最后,还提出了植物的解毒机制。