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Phosphorus and carbon availability regulate structural composition and complexity of AM fungal mycelium

机译:磷和碳的有效性调节AM真菌菌丝体的结构组成和复杂性

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The regulation of the structural composition and complexity of the mycelium of arbuscular mycorrhizal (AM) fungi is not well understood due to their obligate biotrophic nature. The aim of this study was to investigate the structure of extraradical mycelium at high and low availability of carbon (C) to the roots and phosphorus (P) to the fungus. We used monoxenic cultures of the AM fungus Rhizophagus irregularis (formerly Glomus intraradices) with transformed carrot roots as the host in a cultivation system including a root-free compartment into which the extraradical mycelium could grow. We found that high C availability increased hyphal length and spore production and anastomosis formation within individual mycelia. High P availability increased the formation of branched absorbing structures and reduced spore production and the overall length of runner hyphae. The complexity of the mycelium, as indicated by its fractal dimensions, increased with both high C and P availability. The results indicate that low P availability induces a growth pattern that reflects foraging for both P and C. Low C availability to AM roots could still support the explorative development of the mycelium when P availability was low. These findings help us to better understand the development of AM fungi in ecosystems with high P input and/or when plants are subjected to shading, grazing or any management practice that reduces the photosynthetic ability of the plant
机译:丛枝菌根(AM)真菌的结构组成和复杂性的调节由于其专一的生物营养性质而未被很好地理解。这项研究的目的是调查根和根的菌丝的结构,其中根部的碳(C)和真菌的磷(P)的利用率高和低。我们在培养系统中使用了带有转化的胡萝卜根的AM真菌不规则根瘤菌(以前称为Glomus intraradices)作为单宿主培养物,该培养系统包括无根隔室,根外菌丝体可以在其中生长。我们发现,高C利用率增加了菌丝的菌丝长度和孢子的产生以及在单个菌丝体内形成吻合的能力。高磷的有效性增加了分支吸收结构的形成,降低了孢子的产生,减少了流道菌丝的总长度。分形维数表明,菌丝的复杂性随高C和P利用率而增加。结果表明,低磷可利用性诱导了生长模式,反映了磷和碳的觅食。当磷可利用性低时,AM根的低碳可利用性仍可支持菌丝体的探索性发育。这些发现有助于我们更好地理解高磷输入生态系统中和/或当植物受到遮荫,放牧或任何降低植物光合能力的管理措施时AM真菌的发展。

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