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Effect of arbuscular mycorrhizal fungi on plant biomass and the rhizosphere microbial community structure of mesquite grown in acidic lead/zinc mine tailings

机译:丛枝菌根真菌对酸性铅锌矿尾矿中豆科灌木植物生物量和根际微生物群落结构的影响

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摘要

Mine tailings in arid and semi-arid environments are barren of vegetation and subject to eolian dispersion and water erosion. Revegetation is a cost-effective strategy to reduce erosion processes and has wide public acceptance. A major cost of revegetation is the addition of amendments, such as compost, to allow plant establishment. In this paper we explore whether arbuscular mycorrhizal fungi (AMF) can help support plant growth in tailings at a reduced compost concentration. A greenhouse experiment was performed to determine the effects of three AMF inocula on biomass, shoot accumulation of heavy metals, and changes in the rhizosphere microbial community structure of the native plant Prosopisjuliflora (mesquite). Plants were grown in an acidic lead/zinc mine tailings amended with 10% (w/w) compost amendment, which is slightly sub-optimal for plant growth in these tailings. After two months, AMF-inoculated plants showed increased dry biomass and root length (p<0.05) and effective AMF colonization compared to controls grown in uninoculated compost-amended tailings. Mesquite shoot tissue lead and zinc concentrations did not exceed domestic animal toxicity limits regardless of whether AMF inoculation was used. The rhizosphere microbial community structure was assessed using denaturing gradient gel electrophoresis (DGGE) profiles of the small subunit RNA gene for bacteria and fungi. Canonical correspondence analysis (CCA) of DGGE profiles showed that the rhizosphere fungal community structure at the end of the experiment was significantly different from the community structure in the tailings, compost, and AMF inocula prior to planting. Further, CCA showed that AMF inoculation significantly influenced the development of both the fungal and bacterial rhizosphere community structures after two months. The changes observed in the rhizosphere microbial community structure may be either a direct effect of the AMF inocula, caused by changes in plant physiology induced by AMF, or a combination of both mechanisms.
机译:干旱和半干旱环境中的矿山尾矿是贫瘠的植被,易遭受风沙扩散和水蚀。植被再造是减少侵蚀过程的一种经济有效的策略,并已为公众所接受。植被再造的主要成本是添加了诸如堆肥之类的改良剂,以允许建立植物。在本文中,我们探讨了丛枝菌根真菌(AMF)是否能以降低的堆肥浓度帮助支持尾矿中的植物生长。进行了温室实验,以确定三种AMF接种对生物量,枝条中重金属的积累以及原生植物Prosopisjuliflora(豆科植物)的根际微生物群落结构变化的影响。植物在酸性铅/锌矿尾矿中生长,改良后的堆肥修正量为10%(w / w),对于这些尾矿中的植物生长而言,次优。两个月后,与未接种堆肥的尾矿中生长的对照相比,接种AMF的植物显示出增加的干生物量和根长(p <0.05),并且有效的AMF定植。无论是否使用AMF接种,豆科灌木芽组织铅和锌的浓度均未超过家畜的毒性极限。使用细菌和真菌的小亚基RNA基因的变性梯度凝胶电泳(DGGE)谱评估了根际微生物群落结构。 DGGE谱的典型对应分析(CCA)表明,实验结束时的根际真菌群落结构与种植前的尾矿,堆肥和AMF接种物中的群落结构显着不同。此外,CCA还显示,接种AMF会在两个月后显着影响真菌和细菌根际群落结构的发育。在根际微生物群落结构中观察到的变化可能是AMF接种物的直接作用,是由AMF诱导的植物生理学变化引起的,或者是两种机制的组合。

著录项

  • 来源
    《The Science of the Total Environment》 |2011年第6期|p.1009-1016|共8页
  • 作者单位

    Department of Soil, Water and Environmental Science. The University of Arizona, 429 Shantz Bldg., Tucson, AZ 85721, USA;

    Department of Soil, Water and Environmental Science. The University of Arizona, 429 Shantz Bldg., Tucson, AZ 85721, USA;

    Department of Soil, Water and Environmental Science. The University of Arizona, 429 Shantz Bldg., Tucson, AZ 85721, USA;

    Department of Soil, Water and Environmental Science. The University of Arizona, 429 Shantz Bldg., Tucson, AZ 85721, USA,Dept. of Soil, Water and Environmental Science, 429 Shantz Bldg. #38, University of Arizona, Tucson, AZ 85721-0038, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    prosopis juliflora; phytostabilization; DCCE; mycorrhizal fungi; mine tailing;

    机译:肉豆蔻植物稳定化DCCE;菌根真菌矿山尾矿;

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