枯草芽孢杆菌表面素水平影响草抑菌素A的生产。

microLife Pub Date : 2025-01-02 eCollection Date: 2025-01-01 DOI:10.1093/femsml/uqae029
Caja Dinesen, Manca Vertot, Scott A Jarmusch, Carlos N Lozano-Andrade, Aaron J C Andersen, Ákos T Kovács
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引用次数: 0

摘要

虽然次生代谢物的产生对它们的生长不是必需的,但通过加强建立、竞争和营养获取,次生代谢物的产生增加了生产微生物在其自然栖息地的适应性。革兰氏阳性土壤细菌枯草芽孢杆菌产生多种次生代谢物。在这里,我们研究了非核糖体肽surfactin和细菌素subtilosin A之间的调节关系。我们发现缺乏surfactin的枯草芽孢杆菌突变体比其亲本野生型菌株产生更高的subtilosin A。此外,对枯草芽孢杆菌代谢产物的空间可视化研究表明,野生型菌落分泌的表面素可以抑制邻近缺乏表面素的突变菌落的subtillosin a的产生。使用特定转录调控突变体进行报告性分析,证实了ResD作为subtillosin A编码生物合成基因簇(BGC)的激活剂的作用,而去除Rok和AbrB抑制因子增加了BGC的表达,并通过额外删除surfactin进一步增强了BGC的表达。我们的研究揭示了一种次级代谢物对另一种次级代谢物的调节作用,强调次级代谢物的功能可能比它对其他生物体的影响更为复杂,次级代谢物之间的相互作用也可能有助于它们的生态意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Subtilosin A production is influenced by surfactin levels in Bacillus subtilis.

Although not essential for their growth, the production of secondary metabolites increases the fitness of the producing microorganisms in their natural habitat by enhancing establishment, competition, and nutrient acquisition. The Gram-positive soil-dwelling bacterium, Bacillus subtilis, produces a variety of secondary metabolites. Here, we investigated the regulatory relationship between the non-ribosomal peptide surfactin and the sactipeptide bacteriocin subtilosin A. We discovered that B. subtilis mutants lacking surfactin production exhibited higher production of subtilosin A compared to their parental wild-type strain. Additionally, spatial visualization of B. subtilis production of metabolites demonstrated that surfactin secreted by a wild-type colony could suppress subtilosin A production in an adjacent mutant colony lacking surfactin production. Reporter assays were performed using mutants in specific transcriptional regulators, which confirmed the role of ResD as an activator of the subtilosin A encoding biosynthetic gene cluster (BGC), while the removal of Rok and AbrB repressors increased the expression of the BGC, which was further enhanced by additional deletion of surfactin, suggesting that a so-far-unidentified regulator might mediate the influence of surfactin on production of subtilosin A. Our study reveals a regulatory influence of one secondary metabolite on another, highlighting that the function of secondary metabolites could be more complex than its influence on other organisms and interactions among secondary metabolites could also contribute to their ecological significance.

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