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镰刀菌属真菌对狗牙根耐盐性的改善。

Amelioration of Salt Stress on Bermudagrass by the Fungus Aspergillus aculeatus.

机构信息

1 Key Laboratory of Plant Germplasm Enhancement and Specialty Agriculture, Wuhan Botanical Garden, Chinese Academy of Sciences, Wuhan City, Hubei, 430074, P.R. China; and.

2 Graduate University of Chinese Academy of Sciences, Beijing 100049, P.R. China.

出版信息

Mol Plant Microbe Interact. 2017 Mar;30(3):245-254. doi: 10.1094/MPMI-12-16-0263-R. Epub 2017 Mar 29.

DOI:10.1094/MPMI-12-16-0263-R
PMID:28134574
Abstract

There is considerable evidence that plant abiotic-stress tolerance can be evoked by the exploitation of a globally abundant microbe. A. aculeatus, which was initially isolated from the rhizosphere of bermudagrass, has been shown to increase heavy metal tolerance in turfgrasses. Here, we report on the potential of A. aculeatus to induce tolerance to salt stress in bermudagrass. Physiological markers for salt stress, such as plant growth rate, lipid peroxidation, photosynthesis, and ionic homeostasis were assessed. Results indicated that strain A. aculeatus produced indole-3-acetic acid (IAA) and siderophores and exhibited a greater capacity for Na absorption under salt stress. The plant inoculation by A. aculeatus increased plant growth and attenuated the NaCl-induced lipid peroxidation in roots and leaves of bermudagrass. The fungus significantly elevated the amount of IAA and glutathione and slightly enhanced photosynthetic efficiency of salt-treated bermudagrass. Tissues of inoculated plants had significantly increased concentrations of K but lower Na concentrations than those of uninoculated regimes. It appears that the role of A. aculeatus in alleviating bermudagrass salt stress is partly to produce IAA, to increase the activity of antioxidases, to absorb Na by fungal hyphae, and to prevent the plant from ionic homeostasis disruption.

摘要

有相当多的证据表明,利用一种全球丰富的微生物可以诱发植物的非生物胁迫耐受性。最初从百慕大草根际分离出来的 A. aculeatus 已被证明可以提高草坪草对重金属的耐受性。在这里,我们报告了 A. aculeatus 诱导百慕大草耐受盐胁迫的潜力。评估了盐胁迫的生理标记物,如植物生长率、脂质过氧化、光合作用和离子稳态。结果表明,菌株 A. aculeatus 产生吲哚-3-乙酸(IAA)和铁载体,并在盐胁迫下表现出更强的纳吸收能力。百慕大草接种 A. aculeatus 增加了植物的生长,并减轻了 NaCl 诱导的百慕大草根和叶中的脂质过氧化。真菌显著增加了盐处理百慕大草的 IAA 和谷胱甘肽含量,并略微提高了其光合作用效率。接种植物的组织中 K 的浓度明显高于未接种的组织,而 Na 的浓度则低于未接种的组织。似乎 A. aculeatus 缓解百慕大草盐胁迫的作用部分是通过产生 IAA、增加抗氧化酶的活性、通过真菌菌丝吸收 Na 以及防止植物离子稳态破坏来实现的。

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