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Metabolic and Genomic Traits of Phytobeneficial Phenazine-Producing Pseudomonas spp. Are Linked to Rhizosphere Colonization in Arabidopsis thaliana and Solanum tuberosum

机译:植物缺素产物的代谢和基因组性状 - 植物的伪霉菌SPP。 与拟南芥和茄属植物科学的根际殖民化有关

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Bacterial rhizosphere colonization is critical for phytobeneficial rhizobacteria such as phenazine-producing Pseudomonas spp. To better understand this colonization process, potential metabolic and genomic determinants required for rhizosphere colonization were identified using a collection of 60 phenazine-producing Pseudomonas strains isolated from multiple plant species and representative of the worldwide diversity. Arabidopsis thaliana and Solanum tuberosum (potato) were used as host plants. Bacterial rhizosphere colonization was measured by quantitative PCR using a newly designed primer pair and TaqMan probe targeting a conserved region of the phenazine biosynthetic operon. The metabolic abilities of the strains were assessed on 758 substrates using Biolog phenotype microarray technology. These data, along with available genomic sequences for all strains, were analyzed in light of rhizosphere colonization. Strains belonging to the P. chlororaphis subgroup colonized the rhizospheres of both plants more efficiently than strains belonging to the P. fluorescens subgroup. Metabolic results indicated that the ability to use amines and amino acids was associated with an increase in rhizosphere colonization capability in A. thaliana and/or in S. tuberosum . The presence of multiple genetic determinants in the genomes of the different strains involved in catabolic pathways and plant-microbe and microbe-microbe interactions correlated with increased or decreased rhizosphere colonization capabilities in both plants. These results suggest that the metabolic and genomic traits found in different phenazine-producing Pseudomonas strains reflect their rhizosphere competence in A. thaliana and S. tuberosum . Interestingly, most of these traits are associated with similar rhizosphere colonizing capabilities in both plant species.IMPORTANCE Rhizosphere colonization is crucial for plant growth promotion and biocontrol by antibiotic-producing Pseudomonas spp. This colonization process relies on different bacterial determinants which partly remain to be uncovered. In this study, we combined a metabolic and a genomic approach to decipher new rhizosphere colonization determinants which could improve our understanding of this process in Pseudomonas spp. Using 60 distinct strains of phenazine-producing Pseudomonas spp., we show that rhizosphere colonization abilities correlated with both metabolic and genomic traits when these bacteria were inoculated on two distant plants, Arabidopsis thaliana and Solanum tuberosum . Key metabolic and genomic determinants presumably required for efficient colonization of both plant species were identified. Upon further validation, these targets could lead to the development of simple screening tests to rapidly identify efficient rhizosphere colonizers.
机译:细菌根际殖民化对于植物缺陷性无菌细菌是关键的,例如捕获苯吡啶的假单胞菌SPP。为了更好地理解这种定植过程,使用来自多种植物种类分离的60个吩嗪制剂的组菌株和全球多样性的代表来鉴定出根际定植所需的潜在代谢和根际定植所需的潜在代谢和基因组确定剂。 Arabidopsis Thalanaa和Solanum Tuberosum(马铃薯)用作宿主植物。通过使用新设计的引物对和靶向吩嗪生物合成型术术的保守区域的定量PCR来测量细菌根际定量定量。使用Biolog表型微阵列技术在758个基质上评估菌株的代谢能力。根据根际定植分析这些数据以及所有菌株的可用基因组序列。属于P.Plororaphis亚组的菌株比属于荧光亚组的菌株更有效地归因于两种植物的偏振体。代谢结果表明,使用胺和氨基酸的能力与A. Thilala和/或Tuberosum中的根际定植能力增加有关。在分解代谢途径和植物微生物和微生物微生物和微生物微生物相互作用中的不同菌株的多种遗传决定因素的存在与两种植物中的根际定植能力增加或降低。这些结果表明,不同苯嗪生产的假单胞菌菌株中发现的代谢和基因组性状反映了它们在噻anala和汤豆科学中的根际能力。有趣的是,大多数这些性状与植物物种中的类似根际定植能力相关。称为根际定植对植物生长促进和抗生素的假单胞菌SPP来说至关重要。这种定植过程依赖于部分剩余的不同细菌决定簇。在这项研究中,我们组合了一种代谢和基因组方法来破译新的根际定植决定簇,其可以改善我们对Pseudomonas SPP的理解。使用60种不同的苯嗪生产的苯哒菌菌株SPP。,我们表明,当这些细菌接种在两个遥远的植物,拟南芥和茄属汤隆时,当这些细菌接种这些细菌时,根际定植能力与代谢和基因组性质相关。鉴定了主要所需的植物物种高效定植所需的关键代谢和基因组决定簇。在进一步验证时,这些目标可能导致简单的筛查测试的发展,以便快速识别有效的根际结肠剂。

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