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常见丛枝菌根网络放大了幼苗和成熟植物之间对磷的竞争。

Common arbuscular mycorrhizal networks amplify competition for phosphorus between seedlings and established plants.

机构信息

Department of Chemical and Biochemical Engineering, Technical University of Denmark, DK-2800, Kgs. Lyngby, Denmark.

Department of Biology, University of Copenhagen, DK-2100, Copenhagen Ø, Denmark.

出版信息

New Phytol. 2013 Oct;200(1):229-240. doi: 10.1111/nph.12351. Epub 2013 Jun 6.

DOI:10.1111/nph.12351
PMID:23738787
Abstract

Common mycorrhizal networks (CMNs) influence competition between plants, but reports regarding their precise effect are conflicting. We studied CMN effects on phosphorus (P) uptake and growth of seedlings as influenced by various disruptions of network components. Tomato (Solanum lycopersicon) seedlings grew into established networks of Rhizophagus irregularis and cucumber (Cucumis sativus) in two experiments. One experiment studied seedling uptake of (32)P in the network in response to cutting of cucumber shoots; the other analysed seedling uptake of P and nitrogen (N) in the presence of intact or severed arbuscular mycorrhizal fungus networks and at two soil P concentrations. Pre-established and intact networks suppressed growth of tomato seedlings. Cutting of cucumber shoots mitigated P deficiency symptoms of seedlings, which obtained access to P in the extraradical mycelium and thereby showed improved growth. Solitary seedlings growing in a network patch that had been severed from the CMN also grew much better than seedlings of the corresponding CMN. Interspecific and size-asymmetric competition between plants may be amplified rather than relaxed by CMNs that transfer P to large plants providing most carbon and render small plants P deficient. It is likely that grazing or senescence of the large plants will alleviate the network-induced suppression of seedling growth.

摘要

常见菌根网络(CMNs)影响植物间的竞争,但关于其确切影响的报告存在冲突。我们研究了 CMN 对磷(P)吸收和幼苗生长的影响,这些影响受到网络成分各种破坏的影响。在两个实验中,番茄(Solanum lycopersicon)幼苗与不定根毛霉(Rhizophagus irregularis)和黄瓜(Cucumis sativus)建立了网络。一个实验研究了在黄瓜枝条被切断的情况下,网络中幼苗对(32)P 的吸收;另一个实验分析了在完整或切断的丛枝菌根真菌网络存在的情况下,以及在两种土壤 P 浓度下,幼苗对 P 和氮(N)的吸收。预先建立和完整的网络抑制了番茄幼苗的生长。黄瓜枝条的切断缓解了幼苗的 P 缺乏症状,幼苗可以从根外菌丝中获取 P,从而表现出更好的生长。在与 CMN 分离的网络斑块中单独生长的幼苗的生长也比相应的 CMN 幼苗好得多。植物之间的种间和大小不对称竞争可能会被 CMN 放大而不是缓解,CMN 将 P 转移到大植物,为其提供大部分碳,使小植物 P 缺乏。大型植物的放牧或衰老很可能会缓解网络诱导的对幼苗生长的抑制。

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