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Morphological and physiological responses of the external mycelium of Rhizophagus intraradices to water stress

机译:根瘤菌内部对水分胁迫的形态和生理反应

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摘要

Most studies dealing with mycorrhizal associations and drought have focused on the plants, not on the fungi, and tolerance and adaptations of arbuscular mycorrhizal (AM) fungi to cope with water stress are virtually unknown. This study was conducted to assess how water stress directly affects an AM fungus isolate, particularly through morphological and physiological changes in the external mycelium. We used two-compartment pots separated by mesh and an air gap that allowed us to apply water stress treatments only to the external mycelium. Clover (Trifolium subterraneum L.) plants inoculated with Rhizophagus intraradices grew at high humidity until external mycorrhizal mycelium developed in the mycelium compartment. Then, we started three watering treatments: high (H, 70% of soil water holding capacity), low (L, 10%), and mixed watering (HLHL, 70-10-70-10%) only in the hyphal compartment. The HLHL treatment was rewetted once to 70% after 42days. We measured total mycelium length, hyphal length in diameter categories, respiration activity, and protoplasm fragmentation 42 and 76days after starting the treatments. Rhizophagus intraradices mycelium responded to water stress by reducing its length, maintaining larger diameter hyphae, and concentrating protoplasm activity in fragments in the HLHL and L treatments. In both water stress treatments, changes suggested a trade-off between avoiding desiccation and storing resources, and maintaining soil exploration and water uptake capacity.
机译:大多数处理菌根协会和干旱的研究都集中在植物上,而不是对真菌的耐受性和适应性和适应丛生菌根(AM)真菌来应对水分压力几乎未知。进行该研究以评估水胁迫如何直接影响AM真菌分离物,特别是通过外部菌丝体的形态学和生理变化。我们使用了由网状物分开的两个隔室盆和气隙,使我们仅适用于外部菌丝体的水胁迫处理。植物植物(Trifolium subterraneum L.)植物接种肌电管的植物高湿度,直至在菌丝室中发育的外部菌根菌丝体。然后,我们开始了三种浇水处理:高(H,70%的土壤水持续能力),低(L,10%),并仅在亚腿室内混合浇水(HLHL,70-10-70-10%)。在42天后,HLHL治疗再次重新浸渍至70%。在开始治疗后,我们测量了总菌丝体长度,悬垂性,呼吸活动和原生质碎片42和76天。根茎体内菌丝体通过降低其长度,维持较大直径的菌丝和在HLH1和L处理中的碎片中浓缩原生质活性来应对水胁迫。在两种水压力处理中,变化在避免干燥和储存资源之间建议进行权衡,并保持土壤勘探和水吸收能力。

著录项

  • 来源
    《Mycorrhiza》 |2019年第2期|共7页
  • 作者单位

    Univ Nacl Autonoma Mexico Inst Invest Ecosistemas &

    Sustentabilidad Campus Morelia Apartado Postal 27-3 Morelia 58090 Michoacan Mexico;

    Univ Nacl Autonoma Mexico Inst Invest Ecosistemas &

    Sustentabilidad Campus Morelia Apartado Postal 27-3 Morelia 58090 Michoacan Mexico;

    Univ Nacl Autonoma Mexico Inst Invest Ecosistemas &

    Sustentabilidad Campus Morelia Apartado Postal 27-3 Morelia 58090 Michoacan Mexico;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 真菌门;
  • 关键词

    Drought; Hyphae; Hyphal diameter; Respiratory activity;

    机译:干旱;菌丝;悬垂直径;呼吸活动;

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