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对铅污染的响应:菌根化欧洲赤松在根和针叶中形成生物矿物磷氯铅矿。

Response to lead pollution: mycorrhizal Pinus sylvestris forms the biomineral pyromorphite in roots and needles.

作者信息

Bizo Maria L, Nietzsche Sandor, Mansfeld Ulrich, Langenhorst Falko, Majzlan Juraj, Göttlicher Jörg, Ozunu Alexandru, Formann Steffi, Krause Katrin, Kothe Erika

机构信息

Institute of Microbiology, Friedrich Schiller University Jena, Neugasse 25, 07743, Jena, Germany.

Faculty of Environmental Science and Engineering, Babeș-Bolyai University, Fântânele 30, 400294, Cluj-Napoca, Romania.

出版信息

Environ Sci Pollut Res Int. 2017 Jun;24(16):14455-14462. doi: 10.1007/s11356-017-9020-7. Epub 2017 Apr 25.

Abstract

The development of mycorrhized pine seedlings grown in the presence of lead was assessed in order to investigate how higher plants can tolerate lead pollution in the environment. Examination with scanning electron microscopy (SEM) revealed that Pb uptake was prominent in the roots, while a smaller amount was found in pine needles, which requires symplastic uptake and root-to-shoot transfer. Lead was concentrated in nanocrystalline aggregates attached to the cell wall and, according to elemental microanalyses, is associated with phosphorus and chlorine. The identification of the nanocrystalline phase in roots and needles was performed by transmission electron microscopy (TEM) and synchrotron X-ray micro-diffraction (μ-XRD), revealing the presence of pyromorphite, Pb[PO](Cl, OH), in both roots and needles. The extracellular embedding of pyromorphite within plant cell walls, featuring an indented appearance of the cell wall due to a callus-like outcrop of minerals, suggests a biogenic origin. This biomineralization is interpreted as a defense mechanism of the plant against lead pollution.

摘要

为了研究高等植物如何耐受环境中的铅污染,对在铅存在的情况下生长的菌根化松树幼苗的发育情况进行了评估。扫描电子显微镜(SEM)检查显示,根部对铅的吸收很显著,而在松针中发现的铅含量较少,这需要共质体吸收和根到茎的转运。铅集中在附着于细胞壁的纳米晶聚集体中,根据元素微分析,与磷和氯有关。通过透射电子显微镜(TEM)和同步加速器X射线微衍射(μ-XRD)对根和针叶中的纳米晶相进行了鉴定,结果表明根和针叶中均存在磷氯铅矿,即Pb[PO](Cl, OH)。磷氯铅矿在植物细胞壁内的细胞外嵌入,其特征是由于类似愈伤组织的矿物质露头而使细胞壁呈现出凹陷外观,这表明其具有生物成因。这种生物矿化被解释为植物抵御铅污染的一种防御机制。

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