不同光照下黑桑丛枝菌根真菌不规则食根菌对铅的转移偏好

Wei Ren, Haoqiang Zhang, Xiaoxia Jin, Hongchao Huang, Linxi Zhou, Tingying Xu, Ming Tang
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引用次数: 1

摘要

丛枝菌根真菌(AM)可以提高寄主植物对铅的耐受性,并在菌根中积累大量的铅。然而,AM真菌根外菌丝对植物铅吸收的具体贡献尚不清楚。本研究采用三室系统(盆栽试验),比较了AM真菌(Rhizophagus irregularis)定植的桑树(Morus alba)在光照条件下与真菌根外菌丝的联系,比较了它们对Pb的响应差异。遮荫对桑树的光合作用和生长有抑制作用。在本研究中,由于AM真菌菌丝网络的定植和形成过程中根部未暴露Pb,因此在共生已经形成的情况下,Pb的施用对R. irregularis的定植没有影响。相对于向遮荫的桑树,不规则榕更倾向于向遮荫的桑树转移更多的铅,这一条件能够为真菌的生存提供比向遮荫的桑树更多的碳供应。通过菌根途径转运到桑树的铅流动性较低,可能被不规则霉在根内分区,直至超过阈值。高浓度铅胁迫下MaABCG16的高表达表明MaABCG16可能在铅转运中起重要作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Pb Transfer Preference of Arbuscular Mycorrhizal Fungus <i>Rhizophagus irregularis</i> in <i>Morus alba</i> under Different Light Intensities.

Pb Transfer Preference of Arbuscular Mycorrhizal Fungus <i>Rhizophagus irregularis</i> in <i>Morus alba</i> under Different Light Intensities.

Pb Transfer Preference of Arbuscular Mycorrhizal Fungus <i>Rhizophagus irregularis</i> in <i>Morus alba</i> under Different Light Intensities.

Pb Transfer Preference of Arbuscular Mycorrhizal Fungus Rhizophagus irregularis in Morus alba under Different Light Intensities.

Arbuscular mycorrhizal (AM) fungi can improve the lead (Pb) tolerance of host plants and accumulate intensive Pb in mycorrhizal roots. However, the detailed contribution of AM fungal extraradical hyphae to the plants' Pb uptake remains unknown. In this study, mulberry (Morus alba) colonized by the AM fungus (Rhizophagus irregularis) with light treatments were linked by fungal extraradical hyphae using a three-compartment system (pot test), and their differences in responding to Pb application were compared. Shading inhibited mulberry photosynthesis and the growth of mulberry. In this study, Pb application did not affect the colonization of R. irregularis when symbiosis had already formed as the root was not exposed to Pb during the colonization and formation of the AM fungal hyphae network. The R. irregularis preferred to transfer more Pb to the unshaded mulberry than to the shaded mulberry, a condition capable of providing more C supply for fungal survival than to low-light mulberry. The Pb transferred through the mycorrhizal pathway to mulberry had low mobility and might be compartmented in the root by R. irregularis until exceeding a threshold. The relatively high expressions of MaABCG16 with high Pb concentrations in plants suggest that MaABCG16 might play an important role in Pb translocation.

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