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Genomic traits of Klebsiella oxytoca DSM 29614, an uncommon metal-nanoparticle producer strain isolated from acid mine drainages

机译:产酸克雷伯菌DSM 29614的基因组特征,这是一种不常见的从酸性矿山排水系统中分离出的金属纳米颗粒生产菌株

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Klebsiella oxytoca DSM 29614 - isolated from acid mine drainages - grows anaerobically using Fe(III)-citrate as sole carbon and energy source, unlike other enterobacteria and K. oxytoca clinical isolates. The DSM 29614 strain is multi metal resistant and produces metal nanoparticles that are embedded in its very peculiar capsular exopolysaccharide. These metal nanoparticles were effective as antimicrobial and anticancer compounds, chemical catalysts and nano-fertilizers. The DSM 29614 strain genome was sequenced and analysed by a combination of in silico procedures. Comparative genomics, performed between 85 K. oxytoca representatives and K. oxytoca DSM 29614, revealed that this bacterial group has an open pangenome, characterized by a very small core genome (1009 genes, about 2%), a high fraction of unique (43,808 genes, about 87%) and accessory genes (5559 genes, about 11%). Proteins belonging to COG categories “Carbohydrate transport and metabolism” (G), “Amino acid transport and metabolism” (E), “Coenzyme transport and metabolism” (H), “Inorganic ion transport and metabolism” (P), and “membrane biogenesis-related proteins” (M) are particularly abundant in the predicted proteome of DSM 29614 strain. The results of a protein functional enrichment analysis - based on a previous proteomic analysis – revealed metabolic optimization during Fe(III)-citrate anaerobic utilization. In this growth condition, the observed high levels of Fe(II) may be due to different flavin metal reductases and siderophores as inferred form genome analysis. The presence of genes responsible for the synthesis of exopolysaccharide and for the tolerance to heavy metals was highlighted too. The inferred genomic insights were confirmed by a set of phenotypic tests showing specific metabolic capability in terms of i) Fe2+ and exopolysaccharide production and ii) phosphatase activity involved in precipitation of metal ion-phosphate salts. The K. oxytoca DSM 29614 unique capabilities of using Fe(III)-citrate as sole carbon and energy source in anaerobiosis and tolerating diverse metals coincides with the presence at the genomic level of specific genes that can support i) energy metabolism optimization, ii) cell protection by the biosynthesis of a peculiar exopolysaccharide armour entrapping metal ions and iii) general and metal-specific detoxifying activities by different proteins and metabolites.
机译:产酸克雷伯菌DSM 29614-从酸性矿山排水系统中分离-与其他肠杆菌和产氧克雷伯菌临床分离株不同,它使用柠檬酸Fe(III)作为唯一碳和能源厌氧生长。 DSM 29614菌株具有多金属抗性,可产生嵌入其特有的荚膜胞外多糖中的金属纳米颗粒。这些金属纳米颗粒有效用作抗微生物和抗癌化合物,化学催化剂和纳米肥料。通过计算机程序的组合对DSM 29614菌株基因组进行测序和分析。在85个oxytoca代表和oxytoca DSM 29614之间进行的比较基因组学研究表明,该细菌群具有开放的基因组,其特征是核心基因组非常小(1009个基因,约2%),很大一部分是独特的(43,808个)基因,约占87%)和辅助基因(5559个基因,约占11%)。属于COG类别的蛋白质包括“碳水化合物运输和代谢”(G),“氨基酸运输和代谢”(E),“辅酶运输和代谢”(H),“无机离子运输和代谢”(P)和“膜”在预测的DSM 29614蛋白质组中,“生物发生相关蛋白”(M)特别丰富。蛋白质功能富集分析的结果-基于先前的蛋白质组学分析-显示了柠檬酸Fe(III)厌氧利用过程中的代谢优化。在这种生长条件下,观察到的高水平的Fe(II)可能是由于不同的黄素金属还原酶和铁载体的推断形式的基因组分析所致。还强调了负责胞外多糖合成和对重金属的耐受性的基因的存在。通过一系列表型测试证实了推断的基因组见解,这些测试显示出特定的代谢能力,即:i)Fe2 +和胞外多糖的产生以及ii)涉及金属离子磷酸盐沉淀的磷酸酶活性。催产假单胞菌DSM 29614的独特功能是使用柠檬酸Fe(III)作为厌氧菌中的唯一碳源和能源并耐受多种金属,这与基因组水平上可支持i)能量代谢优化的特定基因相吻合。通过截留金属离子的特殊胞外多糖盔甲的生物合成来保护细胞,以及iii)不同蛋白质和代谢产物的一般和金属特异性解毒活性。

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