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Distinct functional roles for hopanoid composition in the chemical tolerance of Zymomonas mobilis Zymomonas mobilis

机译:Hopanoid组合物在Zymomonas Zymomonas Mobilis的化学耐受性中的不同功能作用

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摘要

Summary Hopanoids are a class of membrane lipids found in diverse bacterial lineages, but their physiological roles are not well understood. The ethanol fermenter Zymomonas mobilis features the highest measured concentration of hopanoids, leading to the hypothesis that these lipids can protect against the solvent toxicity. However, the lack of genetic tools for manipulating hopanoid composition in this bacterium has limited their further functional analysis. Due to the polyploidy (50 genome copies per cell) of Z. mobilis , we found that disruptions of essential hopanoid biosynthesis ( hpn ) genes act as genetic knockdowns, reliably modulating the abundance of different hopanoid species. Using a set of hpn transposon mutants, we demonstrate that both reduced hopanoid content and modified hopanoid polar head group composition mediate growth and survival in ethanol. In contrast, the amount of hopanoids, but not their head group composition, contributes to fitness at low pH. Spectroscopic analysis of bacterial‐derived liposomes showed that hopanoids protect against several ethanol‐driven phase transitions in membrane structure, including lipid interdigitation and bilayer dissolution. We propose that hopanoids act through a combination of hydrophobic and inter‐lipid hydrogen bonding interactions to stabilize bacterial membranes during solvent stress.
机译:摘要Hopanoids是一类在不同细菌谱系中发现的膜脂质,但它们的生理作用并不是很好地理解。乙醇发酵液Zymomonas Mobilis具有最高测量的荷松浓度,导致这些脂质可以防止溶剂毒性的假设。然而,在该细菌中缺乏用于操纵潜水脂蛋白组合物的遗传工具限制了它们的进一步功能分析。由于多倍体(大于每个细胞50个基因组拷贝)的运动发酵单胞中,我们发现必需hopanoid生物合成的该中断(HPN)基因作为遗传击倒,可靠地调节不同hopanoid物种的丰度。使用一组HPN转座突变体突变体,我们证明了减少的洋红色含量和改性洋红色极性头部组合物在乙醇中调节生长和存活。相比之下,潜水剂的量,但不是它们的头部组成,有助于低pH值。细菌衍生的脂质体的光谱分析表明,潜水蛋白防止膜结构中的几种乙醇驱动相转变,包括脂质促进和双层溶解。我们提出潜水潜水膜通过疏水性和脂质凝结相互作用的组合作用,以在溶剂应力期间稳定细菌膜。

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  • 来源
    《Molecular Microbiology》 |2019年第5期|共12页
  • 作者单位

    Joint BioEnergy Institute5885 Hollis Street Emeryville CA 94608 USA;

    Joint BioEnergy Institute5885 Hollis Street Emeryville CA 94608 USA;

    Joint BioEnergy Institute5885 Hollis Street Emeryville CA 94608 USA;

    Joint BioEnergy Institute5885 Hollis Street Emeryville CA 94608 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 细胞生物学;
  • 关键词

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