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Efficient Biostimulation of Native and Introduced Quorum-Quenching Rhodococcus erythropolis Populations Is Revealed by a Combination of Analytical Chemistry, Microbiology, and Pyrosequencing

机译:分析化学,微生物学和焦磷酸测序技术的结合揭示了天然的和引入的Quorum-Qu淬灭性红球菌群体的高效生物刺激作用。

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摘要

Degradation of the quorum-sensing (QS) signals known as N-acylhomoserine lactones (AHL) by soil bacteria may be useful as a beneficial trait for protecting crops, such as potato plants, against the worldwide pathogen Pectobacterium. In this work, analytical chemistry and microbial and molecular approaches were combined to explore and compare biostimulation of native and introduced AHL-degrading Rhodococcus erythropolis populations in the rhizosphere of potato plants cultivated in farm greenhouses under hydroponic conditions. We first identified gamma-heptalactone (GHL) as a novel biostimulating agent that efficiently promotes plant root colonization by AHL-degrading R. erythropolis population. We also characterized an AHL-degrading biocontrol R. erythropolis isolate, R138, which was introduced in the potato rhizosphere. Moreover, root colonization by AHL-degrading bacteria receiving different combinations of GHL and R138 treatments was compared by using a cultivation-based approach (percentage of AHL-degrading bacteria), pyrosequencing of PCR-amplified rrs loci (total bacterial community), and quantitative PCR (qPCR) of the qsdA gene, which encodes an AHL lactonase in R. erythropolis. Higher densities of the AHL-degrading R. erythropolis population in the rhizosphere were observed when GHL treatment was associated with biocontrol strain R138. Under this condition, the introduced R. erythropolis population displaced the native R. erythropolis population. Finally, chemical analyses revealed that GHL, gamma-caprolactone (GCL), and their by-products, gamma-hydroxyheptanoic acid and gamma-hydroxycaproic acid, rapidly disappeared from the rhizosphere and did not accumulate in plant tissues. This integrative study highlights biostimulation as a potential innovative approach for improving root colonization by beneficial bacteria.
机译:土壤细菌对称为N-酰基高丝氨酸内酯(AHL)的群体感应(QS)信号的降解可能是有益的特性,可用于保护农作物(例如马铃薯)免受全球病原体Pectobacter侵害。在这项工作中,将分析化学方法与微生物和分子方法相结合,以探索和比较在水培条件下在农场温室中种植的马铃薯植物的根际中天然和引入的AHL降解红景天红球菌种群的生物刺激。我们首先确定了γ-庚内酯(GHL)作为一种新型的生物刺激剂,可以有效地促进AHL降解的R. erythropolis种群促进植物根部定植。我们还表征了一种可降解AHL的生防红细菌R. erythropolis分离株R138,将其引入马铃薯的根际。此外,通过使用基于培养的方法(AHL降解细菌的百分比),PCR扩增的rrs基因座的焦磷酸测序(总细菌群落)和定量比较了接受GHL和R138处理不同组合的AHL降解细菌的根定植。 qsdA基因的PCR(qPCR),该基因在R. erythropolis中编码AHL内酯酶。当将GHL处理与生防菌株R138相关联时,在根际中观察到了AHL降解的R. erythropolis种群的更高密度。在这种情况下,引入的红血球种群迁移了本地的红血球种群。最后,化学分析表明,GHL,γ-己内酯(GCL)及其副产物γ-羟基庚酸和γ-羟基己酸迅速从根际消失,并没有在植物组织中积累。这项综合研究强调了生物刺激是一种有益细菌改善根部定殖的潜在创新方法。

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