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Novel energy conservation strategies and behaviour of Pelotomaculum schinkii driving syntrophic propionate catabolism

机译:Pelotomaculum schinkii驾驶兴奋剂丙氨酸分解代谢的新型节能策略和行为

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摘要

Under methanogenic conditions, short-chain fatty acids are common byproducts from degradation of organic compounds and conversion of these acids is an important component of the global carbon cycle. Due to the thermodynamic difficulty of propionate degradation, this process requires syntrophic interaction between a bacterium and partner methanogen; however, the metabolic strategies and behaviour involved are not fully understood. In this study, the first genome analysis of obligately syntrophic propionate degraders (Pelotomaculum schinkii HH and P. propionicicum MGP) and comparison with other syntrophic propionate degrader genomes elucidated novel components of energy metabolism behind Pelotomaculum propionate oxidation. Combined with transcriptomic examination of P. schinkii behaviour in co-culture with Methanospirillum hungatei, we found that formate may be the preferred electron carrier for P. schinkii syntrophy. Propionate-derived menaquinol may be primarily re-oxidized to formate, and energy was conserved during formate generation through newly proposed proton-pumping formate extrusion. P. schinkii did not overexpress conventional energy metabolism associated with a model syntrophic propionate degrader Syntrophobacter fumaroxidans MPOB (i.e., CoA transferase, Fix and Rnf). We also found that P. schinkii and the partner methanogen may also interact through flagellar contact and amino acid and fructose exchange. These findings provide new understanding of syntrophic energy acquisition and interactions.
机译:在甲基甲基条件下,短链脂肪酸是来自有机化合物的降解的常见副产物,并且这些酸的转化率是全球碳循环的重要组成部分。由于丙酸酯降解的热力学难度,该方法需要细菌和合作甲酸盐之间的同步相互作用;但是,所涉及的代谢策略和行为都没有完全理解。在本研究中,迫然言行丙酸酯降解剂(Pelotomaculum Schinkii HH和P.Propionicicum MGP)的第一基因组分析和与其他语法丙酸盐降解剂基因组的比较阐明了Pelotomaculum丙酸盐氧化后的能量代谢的新组分。结合转录组,与甲烷台值Hungatei共同培养的P. schinkii行为的转录组检查,我们发现甲醛可以是P.Schinkii Syntrophy的优选电子载体。丙酸衍生的menaquinol可以主要被重新氧化成甲酸,通过新提出的质子泵送甲酸甲酸丁酯挤出在甲酸异化时节约能量。 P.Schinkii并未过度表达与模型同步丙酸脱硫转化器呋喃酰氧酰胺MPOB(即COA转移酶,FIX和RNF)相关的常规能量代谢。我们还发现P.Schinkii和合作伙伴甲烷化也可以通过鞭毛接触和氨基酸和果糖交换来相互作用。这些发现提供了对语言能源采集和相互作用的新理解。

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  • 来源
    《Environmental microbiology 》 |2018年第12期| 共9页
  • 作者单位

    Wageningen Univ &

    Res Lab Microbiol Stippeneng 4 NL-6708 WE Wageningen Netherlands;

    Natl Inst Adv Ind Sci &

    Technol Bioprod Res Inst 1-1-1 Higashi Tsukuba Ibaraki 3058566 Japan;

    Natl Inst Adv Ind Sci &

    Technol Bioprod Res Inst 1-1-1 Higashi Tsukuba Ibaraki 3058566 Japan;

    Natl Inst Adv Ind Sci &

    Technol Bioprod Res Inst 1-1-1 Higashi Tsukuba Ibaraki 3058566 Japan;

    Univ Illinois Dept Civil &

    Environm Engn 205 North Mathews Ave Urbana IL 61801 USA;

    Natl Inst Adv Ind Sci &

    Technol Bioprod Res Inst 1-1-1 Higashi Tsukuba Ibaraki 3058566 Japan;

    Wageningen Univ &

    Res Lab Microbiol Stippeneng 4 NL-6708 WE Wageningen Netherlands;

    Japan Agcy Marine Earth Sci &

    Technol JAMSTEC Dept Subsurface Geobiol Anal &

    Res D SUGAR Yokosuka Kanagawa 2370061 Japan;

    Wageningen Univ &

    Res Lab Microbiol Stippeneng 4 NL-6708 WE Wageningen Netherlands;

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

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