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Unearthing the genomes of plant-beneficial Pseudomonas model strains WCS358, WCS374 and WCS417

机译:发掘有益植物假单胞菌模型菌株WCS358,WCS374和WCS417的基因组

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Background Plant growth-promoting rhizobacteria (PGPR) can protect plants against pathogenic microbes through a diversity of mechanisms including competition for nutrients, production of antibiotics, and stimulation of the host immune system, a phenomenon called induced systemic resistance (ISR). In the past 30?years, the Pseudomonas spp. PGPR strains WCS358, WCS374 and WCS417 of the Willie Commelin Scholten (WCS) collection have been studied in detail in pioneering papers on the molecular basis of PGPR-mediated ISR and mechanisms of biological control of soil-borne pathogens via siderophore-mediated competition for iron. Results The genomes of the model WCS PGPR strains were sequenced and analyzed to unearth genetic cues related to biological questions that surfaced during the past 30?years of functional studies on these plant-beneficial microbes. Whole genome comparisons revealed important novel insights into iron acquisition strategies with consequences for both bacterial ecology and plant protection, specifics of bacterial determinants involved in plant-PGPR recognition, and diversity of protein secretion systems involved in microbe-microbe and microbe-plant communication. Furthermore, multi-locus sequence alignment and whole genome comparison revealed the taxonomic position of the WCS model strains within the Pseudomonas genus. Despite the enormous diversity of Pseudomonas spp. in soils, several plant-associated Pseudomonas spp. strains that have been isolated from different hosts at different geographic regions appear to be nearly isogenic to WCS358, WCS374, or WCS417. Interestingly, all these WCS look-a-likes have been selected because of their plant protective or plant growth-promoting properties. Conclusions The genome sequences of the model WCS strains revealed that they can be considered representatives of universally-present plant-beneficial Pseudomonas spp. With their well-characterized functions in the promotion of plant growth and health, the fully sequenced genomes of the WCS strains provide a genetic framework that allows for detailed analysis of the biological mechanisms of the plant-beneficial traits of these PGPR. Considering the increasing focus on the role of the root microbiome in plant health, functional genomics of the WCS strains will enhance our understanding of the diversity of functions of the root microbiome.
机译:背景技术促进植物生长的根际细菌(PGPR)可以通过多种机制保护植物免受病原微生物的侵害,包括争夺养分,产生抗生素和刺激宿主免疫系统,这种现象被称为诱导系统抗性(ISR)。在过去的30年中,假单胞菌属。 Willie Commelin Scholten(WCS)收集品中的PGPR菌株WCS358,WCS374和WCS417已在有关PGPR介导的ISR的分子基础以及通过铁载体介导的铁竞争对土壤传播病原体进行生物控制的机制的开篇论文中进行了详细研究。 。结果对WCS PGPR模型菌株的基因组进行了测序,并进行了分析,以揭示与生物学问题相关的遗传线索,这些线索是在过去30年来对这些有益植物的微生物进行功能性研究的过程中出现的。全基因组比较揭示了铁捕获策略的重要新颖见解,其对细菌生态学和植物保护,涉及植物-PGPR识别的细菌决定簇的特异性以及涉及微生物-微生物和微生物-植物-植物传播的蛋白质分泌系统的多样性都有影响。此外,多基因座序列比对和全基因组比较揭示了假单胞菌属中WCS模型菌株的分类位置。尽管假单胞菌属种类繁多。在土壤中,有几种与植物相关的假单胞菌。从不同地理区域的不同宿主分离出的菌株似乎对WCS358,WCS374或WCS417几乎是同基因的。有趣的是,已经选择了所有这些WCS外观,因为它们具有植物保护或促进植物生长的特性。结论WCS模型菌株的基因组序列表明,它们可以被认为是普遍存在的植物有益假单胞菌的代表。 WCS菌株的全序列化基因组具有促进植物生长和健康的良好特征,因此提供了遗传框架,可以详细分析这些PGPR的植物有益性状的生物学机制。考虑到对根微生物组在植物健康中的作用的日益关注,WCS菌株的功能基因组学将增进我们对根微生物组功能多样性的了解。

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