铁添加促进刺槐-根瘤菌共生对土壤中汞的去除。

IF 3.5 2区 农林科学 Q1 FORESTRY
Shufeng Wang, Tao Wang, Lan Gao, Hongxia Du, Dingyong Wang, Ming Ma, Heinz Rennenberg
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引用次数: 0

摘要

根表面的铁斑可以促进或抑制植物对重金属的吸收和积累。然而,铁调控刺槐对汞(Hg)响应的机制尚未阐明,这阻碍了其在汞污染土壤中去除二价汞(Hg2+)的应用。本研究利用转录组和代谢组的关联分析,研究了铁对刺槐根际微环境和生长性能的影响,以评估其去除Hg2+的潜力。结果表明,添加10 mg kg-1铁可显著促进根表面铁斑块的发育,减少根分泌低分子量有机酸,从而改变根际土壤特征,降低根中总汞含量。此外,胆碱的分泌支持了信号转导,增强了刺槐与根瘤菌的相互作用,从而诱导了对Hg2+的抗性。提高植株抗氧化酶活性,降低Hg2+暴露。尽管促进了Hg2+在木质部的装载和运输,导致Hg2+在地上组织的积累,这是去除Hg2+所必需的,但通过改善光合作用和生长,表明Hg2+抗性增强。这些结果表明,铁的添加有很大的潜力来改善土壤中重金属污染的刺槐的生长,促进地上组织中Hg2+的积累。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Iron addition promotes mercury removal from soil by Robinia pseudoacacia-rhizobia symbiosis.

Iron plaques on the root surface can promote or inhibit the absorption and accumulation of heavy metals by plants. However, the mechanism by which iron regulates the response of Robinia pseudoacacia to mercury (Hg) has not been elucidated, which hinders its application in divalent Hg (Hg2+) removal from Hg-contaminated soil. In this study, association analyses between transcriptome and metabolome were used to investigate effects of iron on the rhizosphere microenvironment and performance of R. pseudoacacia to assess its potential for Hg2+ removal. The results showed that the addition of 10 mg kg-1 iron significantly increased the development of iron plaques on the root surface and reduced the secretion of low-molecular-weight organic acids by roots, thereby changing rhizosphere soil characteristics and decreasing total Hg in roots. In addition, the secretion of choline supported signal transduction and enhanced the interaction between R. pseudoacacia and rhizobia, thereby inducing resistance to Hg2+. Anti-oxidative enzyme activities were increased and Hg2+ exposure of plants was reduced. Enhanced Hg2+ resistance was indicated by improved photosynthesis and growth, despite promoted xylem loading and transport of Hg2+, resulting in its accumulation in aboveground tissues, which is essential for Hg2+ removal. These results indicate that iron addition has a great potential to improve the growth of R. pseudoacacia in Hg-contaminated soil and promote the accumulation of Hg2+ in aboveground tissues for phytoremediation approaches.

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来源期刊
Tree physiology
Tree physiology 农林科学-林学
CiteScore
7.10
自引率
7.50%
发文量
133
审稿时长
1 months
期刊介绍: Tree Physiology promotes research in a framework of hierarchically organized systems, measuring insight by the ability to link adjacent layers: thus, investigated tree physiology phenomenon should seek mechanistic explanation in finer-scale phenomena as well as seek significance in larger scale phenomena (Passioura 1979). A phenomenon not linked downscale is merely descriptive; an observation not linked upscale, might be trivial. Physiologists often refer qualitatively to processes at finer or coarser scale than the scale of their observation, and studies formally directed at three, or even two adjacent scales are rare. To emphasize the importance of relating mechanisms to coarser scale function, Tree Physiology will highlight papers doing so particularly well as feature papers.
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