Graphene oxide influence in soil bacteria is dose dependent and changes at osmotic stress: growth variation, oxidative damage, antioxidant response, and plant growth promotion traits of a Rhizobium strain.

IF 3.6 3区 医学 Q3 NANOSCIENCE & NANOTECHNOLOGY Nanotoxicology Pub Date : 2022-06-01 DOI:10.1080/17435390.2022.2109528
Tiago Lopes, Paulo Cardoso, Diana Matos, Ricardo Rocha, Adília Pires, Paula Marques, Etelvina Figueira
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引用次数: 2

Abstract

Climate change events, such as drought, are increasing and soil bacteria can be severely affected. Moreover, the accumulation of emerging pollutants is expected to rapidly increase, and their impact on soil organisms, their interactions, and the services they provide is poorly known. The use of graphene oxide (GO) has been increasing due to its enormous potential for application in several areas and it is expected that concentration in soil will increase in the future, potentially causing disturbances in soil microorganisms not yet identified.Here we show the effects that GO nanosheets can cause on soil bacteria, in particular those that promote plant growth, in control and 10% polyethylene glycol (PEG) conditions. Low concentrations of GO nanosheets did not affect the growth of Rhizobium strain E20-8, but under osmotic stress (PEG) GO decreased bacterial growth even at lower concentrations. GO caused oxidative stress, with antioxidant mechanisms being induced to restrain damage, effectively at lower concentrations, but less effective at higher concentrations, and oxidative damage overcame. Under osmotic stress, alginate and glycine betaine osmoregulated the bacteria. Simultaneous exposure to PEG and GO induced oxidative damage. Plant growth promotion traits (indole acetic acid and siderophores production) were increased by osmotic stress and GO did not disturb these abilities. In the context of climate change, our findings might be relevant as they can form the premises for the implementation of crop production methodologies adapted to the new prevailing conditions, which include the presence of nanoparticles in the soil and more frequent and severe drought.

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氧化石墨烯对土壤细菌的影响是剂量依赖性的,并且在渗透胁迫下会发生变化:根瘤菌菌株的生长变化、氧化损伤、抗氧化反应和植物生长促进特性。
干旱等气候变化事件正在增加,土壤细菌可能受到严重影响。此外,预计新出现的污染物的积累将迅速增加,而它们对土壤生物的影响、它们之间的相互作用及其提供的服务却知之甚少。氧化石墨烯(GO)的使用一直在增加,因为它在几个领域的应用潜力巨大,预计其在土壤中的浓度将在未来增加,可能会对尚未确定的土壤微生物造成干扰。在这里,我们展示了氧化石墨烯纳米片在控制和10%聚乙二醇(PEG)条件下对土壤细菌的影响,特别是那些促进植物生长的细菌。低浓度的氧化石墨烯纳米片不影响根瘤菌E20-8的生长,但在渗透胁迫(PEG)下,低浓度的氧化石墨烯也会抑制细菌的生长。氧化石墨烯引起氧化应激,通过诱导抗氧化机制抑制损伤,在低浓度下有效,但在高浓度下效果较差,氧化损伤被克服。在渗透胁迫下,海藻酸盐和甜菜碱对细菌有渗透调节作用。同时暴露于聚乙二醇和氧化石墨烯诱导氧化损伤。渗透胁迫增加了植物生长促进性状(吲哚乙酸和铁载体的产生),氧化石墨烯不影响这些能力。在气候变化的背景下,我们的发现可能是相关的,因为它们可以为实施适应新的普遍条件的作物生产方法提供前提,这些条件包括土壤中纳米颗粒的存在和更频繁和严重的干旱。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nanotoxicology
Nanotoxicology 医学-毒理学
CiteScore
10.10
自引率
4.00%
发文量
45
审稿时长
3.5 months
期刊介绍: Nanotoxicology invites contributions addressing research relating to the potential for human and environmental exposure, hazard and risk associated with the use and development of nano-structured materials. In this context, the term nano-structured materials has a broad definition, including ‘materials with at least one dimension in the nanometer size range’. These nanomaterials range from nanoparticles and nanomedicines, to nano-surfaces of larger materials and composite materials. The range of nanomaterials in use and under development is extremely diverse, so this journal includes a range of materials generated for purposeful delivery into the body (food, medicines, diagnostics and prosthetics), to consumer products (e.g. paints, cosmetics, electronics and clothing), and particles designed for environmental applications (e.g. remediation). It is the nano-size range if these materials which unifies them and defines the scope of Nanotoxicology . While the term ‘toxicology’ indicates risk, the journal Nanotoxicology also aims to encompass studies that enhance safety during the production, use and disposal of nanomaterials. Well-controlled studies demonstrating a lack of exposure, hazard or risk associated with nanomaterials, or studies aiming to improve biocompatibility are welcomed and encouraged, as such studies will lead to an advancement of nanotechnology. Furthermore, many nanoparticles are developed with the intention to improve human health (e.g. antimicrobial agents), and again, such articles are encouraged. In order to promote quality, Nanotoxicology will prioritise publications that have demonstrated characterisation of the nanomaterials investigated.
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