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首页> 外文期刊>Tree Physiology >Silver nanoparticles enter the tree stem faster through leaves than through roots
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Silver nanoparticles enter the tree stem faster through leaves than through roots

机译:银纳米粒子通过叶子进入树干而不是通过根

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摘要

A major environmental pollution problem is the release into the atmosphere of particulate matter, including nanoparticles (NPs), which causes serious hazards to human and ecosystem health, particularly in urban areas. However, knowledge about the uptake, translocation and accumulation of NPs in plant tissues is almost completely lacking. The uptake of silver nanoparticles (Ag-NPs) and their transport and accumulation in the leaves, stems and roots of three different tree species, downy oak (Quercus pubescens Willd.), Scots pine (Pinus sylvestris L.) and black poplar (Populus nigra L.), were assessed. In the experiment, Ag-NPs were supplied separately to the leaves (via spraying, the foliar treatment) and roots (via watering, the root treatment) of the three species. Uptake, transport and accumulation of Ag were investigated through spectroscopy. The concentration of Ag in the stem was higher in the foliar than in the root treatment, and in poplar more than in oak and pine. Foliar treatment with Ag-NPs reduced aboveground biomass and stem length in poplars, but not in oaks or pines. Species-specific signals of oxidative stress were observed; foliar treatment of oak caused the accumulation of H2O2 in leaves, and both foliar and root treatments of poplar led to increased O-2(-) in leaves. Ag-NPs affected leaf and root bacteria and fungi; in the case of leaves, foliar treatment reduced bacterial populations in oak and poplar and fungi populations in pine, and in the case of roots, root treatment reduced bacteria and increased fungi in poplar. Species-specific mechanisms of interaction, transport, allocation and storage of NPs in trees were found. We demonstrated definitively that NPs enter into the tree stem through leaves faster than through roots in all of the investigated tree species.
机译:主要的环境污染问题是释放到颗粒物质的气氛中,包括纳米颗粒(NPS),这会对人类和生态系统健康产生严重危害,特别是在城市地区。然而,几乎完全缺乏关于植物组织中NP的摄取,易位和积累的知识。银纳米粒子(Ag-NPS)的吸收及其在叶,茎和根部的叶子和根部的运输和积累,柔软的橡树(栎),苏格兰松树(Pinus Sylvestris L.)和黑杨(Populus NIGRA L.)被评估。在实验中,Ag-NPS分别向叶子(通过喷雾,叶面处理)和三种物种的根(通过喷壶,根治疗)提供。通过光谱研究AG的摄取,运输和积累。茎中的Ag的浓度比根治治疗和杨树在橡木和松树中的浓度高于根治疗。叶状物的叶面治疗降低了杨树的地上生物量和茎长,但不在橡木或松树中。观察到氧化应激的特异性信号;橡树的叶面治疗导致叶片中H2O2的积累,杨树的叶状和根系治疗导致叶片中的O-2( - )增加。 Ag-nps受影响的叶和根细菌和真菌;在叶片的情况下,叶酸治疗减少了橡木和杨树和真菌群体的细菌种群,在根部的情况下,根治疗减少细菌和杨树中的真菌。发现了树木中NPS互动,运输,分配和储存的物种特异性机制。我们明确地证明,NPS通过叶子进入树干,比通过所有调查的树种中的根源更快。

著录项

  • 来源
    《Tree Physiology》 |2019年第7期|共11页
  • 作者单位

    Univ Firenze Dipartimento Sci &

    Tecnol Agr Alimentari Ambienta Via San Bonaventura 13 I-50145 Florence Italy;

    Univ Molise Dipartimento Biosci &

    Terr I-86090 Pesche Italy;

    CNR IVALSA Ist Valorizzaz Legno &

    Specie Arboree Via Madonna Piano 10 I-50019 Florence Italy;

    CNR ICCOM Via Madonna Piano 10 I-50019 Florence Italy;

    CNR IPSP Via Madonna Piano 10 I-50019 Sesto Fiorentino Italy;

    CNR IPSP Via Madonna Piano 10 I-50019 Sesto Fiorentino Italy;

    Swiss Fed Inst Forest Snow &

    Landscape Res WSL Zurcherstr 111 CH-8903 Birmensdorf Switzerland;

    Univ Zagreb Fac Forestry Dept Forest Genet Dendrol &

    Bot Sveto Simunska Cesta 25 Zagreb 10000 Croatia;

    Univ British Columbia Fac Forestry 2424 Main Mall Vancouver BC V6T 1Z4 Canada;

    Univ Molise Dipartimento Agr Ambiente &

    Alimenti Via Sanctis Sns I-86100 Campobasso Italy;

    Swiss Fed Inst Forest Snow &

    Landscape Res WSL Zurcherstr 111 CH-8903 Birmensdorf Switzerland;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 林业;
  • 关键词

    Ag-NPs; pathway of uptake; Pinus sylvestris L.; Populus nigra L.; Quercus pubescens Willd;

    机译:AG-NPS;吸收途径;Pinus Sylvestris L.;Populus nigra L.;Quercus Pubescens Willd;

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