Nanoparticles and root traits: mineral nutrition, stress tolerance and interaction with rhizosphere microbiota.

IF 3.6 3区 生物学 Q1 PLANT SCIENCES Planta Pub Date : 2024-06-26 DOI:10.1007/s00425-024-04409-y
Sneha Tripathi, Kavita Tiwari, Shivani Mahra, J Victoria, Shweta Rana, Durgesh Kumar Tripathi, Shivesh Sharma
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Abstract

Main conclusion: This review article highlights a broader perspective of NPs and plant-root interaction by focusing on their beneficial and deleterious impacts on root system architecture (RSA). The root performs a vital function by securing itself in the soil, absorbing and transporting water and nutrients to facilitate plant growth and productivity. In dicots, the architecture of the root system (RSA) is markedly shaped by the development of the primary root and its branches, showcasing considerable adaptability in response to changes in the environment. For promoting agriculture and combating global food hunger, the use of nanoparticles (NPs) may be an exciting option, for which it is essential to understand the behaviour of plants under NPs exposure. The nature of NPs and their physicochemical characteristics play a significant role in the positive/negative response of roots and shoots. Root morphological features, such as root length, root mass and root development features, may regulated positively/negatively by different types of NPs. In addition, application of NPs may also enhance nutrient transport and soil fertility by the promotion of soil microorganisms including plant growth-promoting rhizobacteria (PGPRs) and also soil enzymes. Interestingly the interaction of nanomaterials (NMs) with rhizospheric bacteria can enhance plant development and soil health. However, some studies also suggested that the increased use of several types of engineered nanoparticles (ENPs) may disrupt the equilibrium of the soil-root interface and unsafe morphogenesis by causing the browning of roots and suppressing the growth of root and soil microbes. Thus, this review article has sought to compile a broader perspective of NPs and plant-root interaction by focusing on their beneficial or deleterious impacts on RSA.

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纳米颗粒与根系特性:矿物质营养、抗逆性以及与根瘤微生物群的相互作用。
主要结论:这篇综述文章从更广阔的视角探讨了氮磷物质与植物根系的相互作用,重点关注氮磷物质对根系结构(RSA)的有益和有害影响。根系在土壤中发挥着重要功能,它吸收和输送水分和养分,促进植物生长和提高生产力。在双子叶植物中,根系(RSA)的结构由主根及其分支的发育明显决定,在应对环境变化时表现出相当强的适应性。为促进农业发展和消除全球粮食饥饿,使用纳米粒子(NPs)可能是一个令人兴奋的选择,为此,了解植物在 NPs 暴露下的行为至关重要。NPs 的性质及其理化特性对根系和芽的积极/消极反应起着重要作用。不同类型的 NPs 可能会对根的形态特征(如根的长度、根的质量和根的发育特征)产生积极或消极的调节作用。此外,施用纳米粒子还可通过促进土壤微生物(包括植物生长促进根瘤菌(PGPRs)和土壤酶)的生长,提高养分的运输和土壤肥力。有趣的是,纳米材料(NMs)与根瘤菌的相互作用可促进植物生长和土壤健康。然而,一些研究也表明,越来越多地使用几种工程纳米粒子(ENPs)可能会破坏土壤-根系界面的平衡,导致根系褐变,抑制根系和土壤微生物的生长,从而影响形态发生。因此,这篇综述文章试图从更广阔的视角来梳理纳米粒子与植物-根系的相互作用,重点关注其对 RSA 的有益或有害影响。
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来源期刊
Planta
Planta 生物-植物科学
CiteScore
7.20
自引率
2.30%
发文量
217
审稿时长
2.3 months
期刊介绍: Planta publishes timely and substantial articles on all aspects of plant biology. We welcome original research papers on any plant species. Areas of interest include biochemistry, bioenergy, biotechnology, cell biology, development, ecological and environmental physiology, growth, metabolism, morphogenesis, molecular biology, new methods, physiology, plant-microbe interactions, structural biology, and systems biology.
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