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丛枝菌根中的重金属悖论:从机制到生物技术应用

The heavy metal paradox in arbuscular mycorrhizas: from mechanisms to biotechnological applications.

作者信息

Ferrol Nuria, Tamayo Elisabeth, Vargas Paola

机构信息

Departamento de Microbiología del Suelo y Sistemas Simbióticos, Estación Experimental del Zaidín, CSIC, C. Profesor Albareda 1, 18008, Granada, Spain

Departamento de Microbiología del Suelo y Sistemas Simbióticos, Estación Experimental del Zaidín, CSIC, C. Profesor Albareda 1, 18008, Granada, Spain.

出版信息

J Exp Bot. 2016 Dec;67(22):6253-6265. doi: 10.1093/jxb/erw403. Epub 2016 Oct 31.

DOI:10.1093/jxb/erw403
PMID:27799283
Abstract

Arbuscular mycorrhizal symbioses that involve most plants and Glomeromycota fungi are integral and functional parts of plant roots. In these associations, the fungi not only colonize the root cortex but also maintain an extensive network of hyphae that extend out of the root into the surrounding environment. These external hyphae contribute to plant uptake of low mobility nutrients, such as P, Zn, and Cu. Besides improving plant mineral nutrition, arbuscular mycorrhizal fungi (AMF) can alleviate heavy metal (HM) toxicity to their host plants. HMs, such as Cu, Zn, Fe, and Mn, play essential roles in many biological processes but are toxic when present in excess. This makes their transport and homeostatic control of particular importance to all living organisms. AMF play an important role in modulating plant HM acquisition in a wide range of soil metal concentrations and have been considered to be a key element in the improvement of micronutrient concentrations in crops and in the phytoremediation of polluted soils. In the present review, we provide an overview of the contribution of AMF to plant HM acquisition and performance under deficient and toxic HM conditions, and summarize current knowledge of metal homeostasis mechanisms in arbuscular mycorrhizas.

摘要

丛枝菌根共生关系涉及大多数植物和球囊菌门真菌,是植物根系不可或缺的功能部分。在这些共生关系中,真菌不仅定殖于根皮层,还维持着一个广泛的菌丝网络,该网络从根延伸到周围环境中。这些外部菌丝有助于植物吸收低移动性养分,如磷、锌和铜。除了改善植物的矿质营养外,丛枝菌根真菌(AMF)还可以减轻重金属(HM)对其寄主植物的毒性。铜、锌、铁和锰等重金属在许多生物过程中发挥着重要作用,但过量存在时则具有毒性。这使得它们的运输和稳态控制对所有生物体尤为重要。AMF在各种土壤金属浓度下调节植物对重金属的吸收方面发挥着重要作用,并且被认为是提高作物中微量营养素浓度以及污染土壤植物修复的关键因素。在本综述中,我们概述了AMF在缺乏和有毒重金属条件下对植物获取重金属和表现的贡献,并总结了目前关于丛枝菌根中金属稳态机制的知识。

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