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Ferric Uptake Regulator Provides a New Strategy for Acidophile Adaptation to Acidic Ecosystems

机译:Ferric Indake Sypenator为酸性生态系统提供了一种新的嗜酸性适应策略

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Acidophiles play a dominant role in driving elemental cycling in natural acid mine drainage (AMD) habitats and exhibit important application value in bioleaching and bioremediation. Acidity is an inevitable environmental stress and a key factor that affects the survival of acidophiles in their acidified natural habitats; however, the regulatory strategies applied by acidophilic bacteria to withstand low pH are unclear. We identified the significance of the ferric uptake regulator (Fur) in acidophiles adapting to acidic environments and discovered that Fur is ubiquitous as well as highly conserved in acidophilic bacteria. Mutagenesis of the fur gene of Acidithiobacillus caldus , a prototypical acidophilic sulfur-oxidizing bacterium found in AMD, revealed that Fur is required for the acid resistance of this acidophilic bacterium. Phenotypic characterization, transcriptome sequencing (RNA-seq), mutagenesis, and biochemical assays indicated that the Acidithiobacillus caldus ferric uptake regulator (AcFur) is involved in extreme acid resistance by regulating the expression of several key genes of certain cellular activities, such as iron transport, biofilm formation, sulfur metabolism, chemotaxis, and flagellar biosynthesis. Finally, a Fur-dependent acid resistance regulatory strategy in A. caldus was proposed to illustrate the ecological behavior of acidophilic bacteria under low pH. This study provides new insights into the adaptation strategies of acidophiles to AMD ecosystems and will promote the design and development of engineered biological systems for the environmental adaptation of acidophiles.IMPORTANCE This study advances our understanding of the acid tolerance mechanism of A. caldus , identifies the key fur gene responsible for acid resistance, and elucidates the correlation between fur and acid resistance, thus contributing to an understanding of the ecological behavior of acidophilic bacteria. These findings provide new insights into the acid resistance process in Acidithiobacillus species, thereby promoting the study of the environmental adaptation of acidophilic bacteria and the design of engineered biological systems.
机译:嗜酸乳乳酸层在天然酸性矿山排水(AMD)栖息地的驾驶元素循环中发挥着主导作用,并在生物浸入和生物修复中表现出重要的应用价值。酸度是一种不可避免的环境压力和影响酸化自然栖息地的嗜酸性存活的关键因素;然而,嗜酸性细菌施加低pH值的监管策略尚不清楚。我们鉴定了适应酸性环境中的丙铁吸收调节剂(毛皮)的意义,并发现皮草普遍存在,并且在嗜酸性细菌中高度保守。在AMD中发现的酸酐毒蕈菊毛刺菌的致腐蚀基因的诱变,揭示了这种嗜酸性细菌的耐酸性所需的皮毛。表型表征,转录组测序(RNA-SEQ),诱变和生物化学测定表明,酸酐丙烯酸钙吸收调节剂(ACFUR)通过调节某些细胞活性的几个关键基因的表达,例如铁运输,生物膜形成,硫代谢,趋化性和鞭毛生物合成。最后,提出了一种腐烂的腐蚀性耐酸性调节策略,以说明低pH下嗜酸性细菌的生态行为。本研究提供了新的见解对AMD生态系统的嗜酸妇女的适应策略,并将促进工程生物系统的设计和开发,为嗜酸性酸度的环境适应。该研究进展我们对A. Caldus酸性耐受机制的理解识别关键毛虫基因负责耐酸性,并阐明皮草和耐酸性之间的相关性,从而有助于了解嗜酸性细菌的生态行为。这些调查结果为酸酐物种中的酸性抗性过程提供了新的见解,从而促进了嗜酸性细菌环境适应的研究和工程生物系统的设计。

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