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首页> 外文期刊>Plant Science: An International Journal of Experimental Plant Biology >Dissection of Trichoderma longibrachiatum-induced defense in onion (Allium cepa L.) against Fusarium oxysporum f. sp cepa by target metabolite profiling
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Dissection of Trichoderma longibrachiatum-induced defense in onion (Allium cepa L.) against Fusarium oxysporum f. sp cepa by target metabolite profiling

机译:解剖长木霉菌诱导洋葱对洋葱枯萎病的防御能力f。 sp cepa通过目标代谢物分析

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Trichoderma spp. are versatile opportunistic plant symbionts that can cause substantial changes in the metabolism of host plants, thereby increasing plant growth and activating plant defense to various diseases. Target metabolite profiling approach was selected to demonstrate that Trichoderma longi-brachiatum isolated from desert soil can confer beneficial agronomic traits to onion and induce defense mechanism against Fusarium oxysporum f. sp. cepa (FOC), through triggering a number of primary and secondary metabolite pathways. Onion seeds primed with Trichoderma T1 strain displayed early seedling emergence and enhanced growth compared with Trichoderma T2-treatment and untreated control. Therefore, T1 was selected for further investigations under greenhouse conditions, which revealed remarkable improvement in the onion bulb growth parameters and resistance against FOC. The metabolite platform of T1-primed onion (T1) and T1-primed onion challenged with FOC (T1 + FOC) displayed significant accumulation of 25 abiotic and biotic stress-responsive metabolites, representing carbohydrate, phenylpropanoid and sulfur assimilation metabolic pathways. In addition, T1- and T1 + FOC-treated onion plants showed discrete antioxidant capacity against 1,1-diphenyl-2-picrylhydrazyl (DPPH) compared with control. Our findings demonstrated the contribution of T. longibrachiatum to the accumulation of key metabolites, which subsequently leads to the improvement of onion growth, as well as its resistance to oxidative stress and FOC. (C) 2016 Elsevier Ireland Ltd. All rights reserved.
机译:木霉属。是多种多样的机会植物共生体,可引起寄主植物代谢的实质性变化,从而增加植物的生长并激活植物对各种疾病的防御作用。选择目标代谢物谱分析方法,以证明从沙漠土壤中分离出的长木霉菌可以赋予洋葱有益的农艺性状,并诱导对尖孢镰刀菌的防御机制。 sp。 cepa(FOC),通过触发许多主要和次要代谢途径。与木霉T2处理和未处理的对照相比,用木霉T1菌株引发的洋葱种子显示出较早的幼苗出苗并增强了生长。因此,选择T1进行温室条件下的进一步研究,结果表明洋葱鳞茎的生长参数和对FOC的抗性显着提高。 T1引发的洋葱(T1)和T1引发的洋葱经FOC(T1 + FOC)攻击的代谢产物平台显示出25种非生物和生物应激响应性代谢产物的大量积累,代表碳水化合物,苯丙烷和硫同化代谢途径。此外,与对照相比,T1和T1 + FOC处理的洋葱植株对1,1-二苯基-2-吡啶并肼基(DPPH)的抗氧化能力离散。我们的研究结果证明了长臂梭菌对关键代谢物积累的贡献,这随后导致了洋葱生长的改善,以及其对氧化应激和FOC的抗性。 (C)2016 Elsevier Ireland Ltd.保留所有权利。

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