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比较突出的固氮菌菌株在固氮菌-假单胞菌-丛枝菌根真菌共生体中促进玉米生长。

Comparison of prominent Azospirillum strains in Azospirillum-Pseudomonas-Glomus consortia for promotion of maize growth.

机构信息

Université de Lyon, 69622 Lyon, France.

出版信息

Appl Microbiol Biotechnol. 2013 May;97(10):4639-49. doi: 10.1007/s00253-012-4249-z. Epub 2012 Jul 18.

DOI:10.1007/s00253-012-4249-z
PMID:22805783
Abstract

Azospirillum are prominent plant growth-promoting rhizobacteria (PGPR) extensively used as phytostimulatory crop inoculants, but only few studies are dealing with Azospirillum-containing mixed inocula involving more than two microorganisms. We compared here three prominent Azospirillum strains as part of three-component consortia including also the PGPR Pseudomonas fluorescens F113 and a mycorrhizal inoculant mix composed of three Glomus strains. Inoculant colonization of maize was assessed by quantitative PCR, transcription of auxin synthesis gene ipdC (involved in phytostimulation) in Azospirillum by RT-PCR, and effects on maize by secondary metabolic profiling and shoot biomass measurements. Results showed that phytostimulation by all the three-component consortia was comparable, despite contrasted survival of the Azospirillum strains and different secondary metabolic responses of maize to inoculation. Unexpectedly, the presence of Azospirillum in the inoculum resulted in lower phytostimulation in comparison with the Pseudomonas-Glomus two-component consortium, but this effect was transient. Azospirillum's ipdC gene was transcribed in all treatments, especially with three-component consortia, but not with all plants and samplings. Inoculation had no negative impact on the prevalence of mycorrhizal taxa in roots. In conclusion, this study brought new insights in the functioning of microbial consortia and showed that Azospirillum-Pseudomonas-Glomus three-component inoculants may be useful in environmental biotechnology for maize growth promotion.

摘要

固氮菌是一种重要的植物促生根际细菌(PGPR),广泛用作植物刺激作物接种剂,但只有少数研究涉及包含两种以上微生物的固氮菌混合接种剂。我们在这里比较了三个突出的固氮菌菌株,它们是三组分联合体的一部分,还包括 PGPR 荧光假单胞菌 F113 和由三个 Glomus 菌株组成的菌根接种剂混合物。通过定量 PCR 评估接种剂对玉米的定殖,通过 RT-PCR 转录固氮菌中生长素合成基因 ipdC(参与植物刺激),并通过二次代谢物分析和芽生物量测量评估对玉米的影响。结果表明,尽管固氮菌菌株的存活情况不同,玉米对接种的二次代谢反应也不同,但所有三组分联合体的植物刺激作用相当。出乎意料的是,与 Pseudomonas-Glomus 二组分联合体相比,接种剂中固氮菌的存在导致植物刺激作用降低,但这种效应是暂时的。固氮菌的 ipdC 基因在所有处理中都有转录,尤其是在三组分联合体中,但并非所有植物和采样都有转录。接种对根中菌根类群的流行率没有负面影响。总之,本研究为微生物联合体的功能提供了新的见解,并表明固氮菌-荧光假单胞菌-菌根三组分接种剂可能在玉米生长促进的环境生物技术中有用。

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