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Comparative genomic, proteomic and exoproteomic analyses of three Pseudomonas strains reveals novel insights into the phosphorus scavenging capabilities of soil bacteria

机译:三种假单胞菌菌株的基因组,蛋白质组和外文体学比较分析揭示了对土壤细菌除磷能力的新见解

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Bacteria that inhabit the rhizosphere of agricultural crops can have a beneficial effect on crop growth. One such mechanism is the microbial-driven solubilization and remineralization of complex forms of phosphorus (P). It is known that bacteria secrete various phosphatases in response to low P conditions. However, our understanding of their global proteomic response to P stress is limited. Here, exoproteomic analysis of Pseudomonas putida BIRD-1 (BIRD-1), Pseudomonas fluorescens SBW25 and Pseudomonas stutzeri DSM4166 was performed in unison with whole-cell proteomic analysis of BIRD-1 grown under phosphate (Pi) replete and Pi deplete conditions. Comparative exoproteomics revealed marked heterogeneity in the exoproteomes of each Pseudomonas strain in response to Pi depletion. In addition to well-characterized members of the PHO regulon such as alkaline phosphatases, several proteins, previously not associated with the response to Pi depletion, were also identified. These included putative nucleases, phosphotriesterases, putative phosphonate transporters and outer membrane proteins. Moreover, in BIRD-1, mutagenesis of the master regulator, phoBR, led us to confirm the addition of several novel PHO-dependent proteins. Our data expands knowledge of the Pseudomonas PHO regulon, including species that are frequently used as bioinoculants, opening up the potential for more efficient and complete use of soil complexed P.
机译:居住在农作物根际上的细菌可以对作物生长产生有益的影响。一种这样的机制是微生物驱动的复杂形式的磷(P)的增溶和再矿化。已知细菌响应低磷条件分泌各种磷酸酶。但是,我们对它们对磷胁迫的全球蛋白质组学反应的了解是有限的。在这里,对恶臭假单胞菌BIRD-1(BIRD-1),荧光假单胞菌SBW25和斯氏假单胞菌DSM4166的体外研究与在磷酸盐(Pi)充足和Pi耗尽条件下生长的BIRD-1的全细胞蛋白质组学分析一致进行。比较外生组学显示响应于Pi耗尽,每个假单胞菌菌株的外生蛋白质组具有显着异质性。除了PHO调节子的特征明确的成员(如碱性磷酸酶)外,还鉴定了一些以前与对Pi耗尽的反应无关的蛋白。这些包括推定的核酸酶,磷酸三酯酶,推定的膦酸酯转运蛋白和外膜蛋白。此外,在BIRD-1中,主调节剂phoBR的诱变使我们确定添加了几种新颖的PHO依赖性蛋白。我们的数据扩大了对假单胞菌PHO regulon的了解,包括经常用作生物触媒剂的物种,从而为更有效和完全利用土壤复合磷打开了潜力。

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