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首页> 外文期刊>MicrobiologyOpen >The Lactococcus lactis KF147 nonribosomal peptide synthetase/polyketide synthase system confers resistance to oxidative stress during growth on plant leaf tissue lysate
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The Lactococcus lactis KF147 nonribosomal peptide synthetase/polyketide synthase system confers resistance to oxidative stress during growth on plant leaf tissue lysate

机译:乳酸乳球菌KF147非核糖体肽合成酶/聚酮化合物合酶系统赋予植物叶片组织裂解液生长期间的抗氧化胁迫能力

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摘要

Strains of Lactococcus lactis isolated from plant tissues possess adaptations that support their survival and growth in plant‐associated microbial habitats. We previously demonstrated that genes coding for a hybrid nonribosomal peptide synthetase/polyketide synthase (NRPS/PKS) system involved in production of an uncharacterized secondary metabolite are specifically induced in L. lactis KF147 during growth on plant tissues. Notably, this NRPS/PKS has only been identified in plant‐isolated strains of L. lactis . Here, we show that the L. lactis KF147 NRPS/PKS genes have homologs in certain Streptococcus mutans isolates and the genetic organization of the NRPS/PKS locus is conserved among L. lactis strains. Using an L. lactis KF147 mutant deficient in synthesis of NrpC, a 4′‐phosphopantetheinyl transferase, we found that the NRPS/PKS system improves L. lactis during growth under oxidative conditions in Arapidopsis thaliana leaf lysate. The NRPS/PKS system also improves tolerance of L. lactis to reactive oxygen species and specifically H 2 O 2 and superoxide radicals in culture medium. These findings indicate that this secondary metabolite provides a novel mechanism for reactive oxygen species detoxification not previously known for this species.
机译:从植物组织中分离出的乳酸乳球菌具有适应性,可以支持它们在植物相关的微生物栖息地中的生存和生长。我们以前证明在植物组织中生长期间,在乳酸乳球菌KF147中特异性诱导了编码杂化非核糖体肽合成酶/聚酮化合物合酶(NRPS / PKS)系统的基因,该系统在乳酸乳球菌KF147中被特异性诱导。值得注意的是,这种NRPS / PKS仅在植物分离的乳酸乳球菌菌株中得到鉴定。在这里,我们显示乳酸乳球菌KF147 NRPS / PKS基因在某些变形链球菌菌株中具有同源性,并且乳酸乳球菌菌株中NRPS / PKS基因座的遗传组织是保守的。我们使用缺乏合成NrpC,4'-磷酸泛锡烷基转移酶NrpC的乳酸乳球菌KF147突变体,我们发现NRPS / PKS系统在氧化条件下在拟南芥叶片裂解液中的生长过程中改善了乳酸乳球菌。 NRPS / PKS系统还提高了乳酸乳球菌对活性氧的耐受性,特别是对培养基中的H 2 O 2和超氧自由基的耐受性。这些发现表明,这种次级代谢产物为活性氧物质的解毒提供了一种新颖的机制,而该物质以前是未知的。

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