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菌株的比较基因组学揭示了一个具有栖息地适应特征的核心基因组和一个富含次生代谢产物的附属基因组。

Comparative Genomics of Strains Reveals a Core Genome with Traits for Habitat Adaptation and a Secondary Metabolites Rich Accessory Genome.

作者信息

Belbahri Lassaad, Chenari Bouket Ali, Rekik Imen, Alenezi Faizah N, Vallat Armelle, Luptakova Lenka, Petrovova Eva, Oszako Tomasz, Cherrad Semcheddine, Vacher Sébastien, Rateb Mostafa E

机构信息

Laboratory of Soil Biology, University of NeuchatelNeuchatel, Switzerland.

NextBiotechAgareb, Tunisia.

出版信息

Front Microbiol. 2017 Aug 3;8:1438. doi: 10.3389/fmicb.2017.01438. eCollection 2017.

Abstract

The Gram positive, non-pathogenic endospore-forming soil inhabiting prokaryote is a plant growth-promoting rhizobacterium. processes wide biocontrol abilities and numerous strains have been reported to suppress diverse bacterial, fungal and fungal-like pathogens. Knowledge about strain level biocontrol abilities is warranted to translate this knowledge into developing more efficient biocontrol agents and bio-fertilizers. Ever-expanding genome studies of are showing tremendous increase in strain-specific new secondary metabolite clusters which play key roles in the suppression of pathogens and plant growth promotion. In this report, we have used genome mining of all sequenced genomes to highlight species boundaries, the diverse strategies used by different strains to promote plant growth and the diversity of their secondary metabolites. Genome composition of the targeted strains suggest regions of genomic plasticity that shape the structure and function of these genomes and govern strain adaptation to different niches. Our results indicated that : (i) suffer taxonomic imprecision that blurs the debate over inter-strain genome diversity and dynamics, (ii) have diverse strategies to promote plant growth and development, (iii) have an unlocked, yet to be delimited impressive arsenal of secondary metabolites and products, (iv) have large number of so-called orphan gene clusters, i.e., biosynthetic clusters for which the corresponding metabolites are yet unknown, and (v) have a dynamic pan genome with a secondary metabolite rich accessory genome.

摘要

这种革兰氏阳性、非致病性、形成内生孢子的土壤栖息原核生物是一种促进植物生长的根际细菌。它具有广泛的生物防治能力,据报道许多菌株能抑制多种细菌、真菌和类真菌病原体。有必要了解菌株水平的生物防治能力,以便将这些知识转化为开发更有效的生物防治剂和生物肥料。对该菌不断扩展的基因组研究表明,菌株特异性新次级代谢产物簇大量增加,这些簇在抑制病原体和促进植物生长中起关键作用。在本报告中,我们对所有已测序的该菌基因组进行了基因组挖掘,以突出物种界限、不同菌株促进植物生长所采用的多样策略及其次级代谢产物的多样性。目标菌株的基因组组成表明存在基因组可塑性区域,这些区域塑造了这些基因组的结构和功能,并决定了菌株对不同生态位的适应性。我们的结果表明:(i)该菌存在分类学不精确性,这模糊了关于菌株间基因组多样性和动态性的争论;(ii)具有促进植物生长和发育的多样策略;(iii)拥有一个尚未开发、有待界定的令人印象深刻的次级代谢产物和产品库;(iv)有大量所谓的孤儿基因簇,即其相应代谢产物尚不清楚的生物合成簇;(v)具有一个动态的泛基因组,其辅助基因组富含次级代谢产物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/96f9/5541019/1573e4415aca/fmicb-08-01438-g0001.jpg

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