需要膜电位的琥珀酸脱氢酶是丙酸氧化的关键,是合养丙酸氧化细菌所特有的。

IF 2.1 4区 环境科学与生态学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Tomoyuki Kosaka, Yuka Tsushima, Yusuke Shiota, Takayuki Ishiguchi, Kazuo Matsushita, Minenosuke Matsutani, Mamoru Yamada
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引用次数: 0

摘要

在热丙酸Pelotomaculum thermopropionum中,丙酸氧化是在热力学极限下进行的。丙酸氧化途径中能量最不利的反应是琥珀酸氧化。根据先前的基因组和转录组学分析,在丙酸氧化条件下,P. thermopropionicum中的琥珀酸氧化是由两种琥珀酸脱氢酶(sdh)的膜结合形式进行的。本文研究了SDH的活性,热丙酸假单胞菌琥珀酸氧化反应的机制,以及相关基因蛋白序列的重要性。SDH活性高度局限于膜组分。对可溶部分的分析表明,富马酸还原酶接受NADH的电子,表明膜结合的SDH参与了丙酸氧化。我们利用三磷酸腺苷(ATP)合成酶解偶联剂和抑制剂以及膜结合的SDH来研究P. thermopropionicum的膜电位是否支持丙酸氧化和产氢。这些化学物质抑制氢的产生,表明膜结合的SDH需要琥珀酸氧化的膜电位,而这种膜电位是由ATP合酶维持的。此外,在丙酸氧化细菌中,黄素腺嘌呤二核苷酸结合亚基和细胞色素b亚基的保守氨基酸序列的系统发育分布表明,膜结合的sdh具有特异性的保守氨基酸残基,这些氨基酸残基与合养丙酸氧化细菌中有效的琥珀酸氧化密切相关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Membrane Potential-requiring Succinate Dehydrogenase Constitutes the Key to Propionate Oxidation and Is Unique to Syntrophic Propionate-oxidizing Bacteria.

Membrane Potential-requiring Succinate Dehydrogenase Constitutes the Key to Propionate Oxidation and Is Unique to Syntrophic Propionate-oxidizing Bacteria.

Membrane Potential-requiring Succinate Dehydrogenase Constitutes the Key to Propionate Oxidation and Is Unique to Syntrophic Propionate-oxidizing Bacteria.

Membrane Potential-requiring Succinate Dehydrogenase Constitutes the Key to Propionate Oxidation and Is Unique to Syntrophic Propionate-oxidizing Bacteria.

Propionate oxidation in Pelotomaculum thermopropionicum is performed under a thermodynamic limit. The most energetically unfavorable reaction in the propionate oxidation pathway is succinate oxidation. Based on previous genomic and transcriptomic ana-lyses, succinate oxidation in P. thermopropionicum under propionate-oxidizing conditions is conducted by the membrane-bound forms of two succinate dehydrogenases (SDHs). We herein examined the activity of SDH, the mechanisms underlying the succinate oxidation reaction in P. thermopropionicum, and the importance of the protein sequences of related genes. SDH activity was highly localized to the membrane fraction. An ana-lysis of the soluble fraction revealed that fumarate reductase received electrons from NADH, suggesting the involvement of membrane-bound SDH in propionate oxidation. We utilized an uncoupler and inhibitors of adenosine triphosphate (ATP) synthase and membrane-bound SDH to investigate whether the membrane potential of P. thermopropionicum supports propionate oxidation alongside hydrogen production. These chemicals inhibited hydrogen production, indicating that membrane-bound SDH requires a membrane potential for succinate oxidation, and this membrane potential is maintained by ATP synthase. In addition, the phylogenetic distribution of the flavin adenine dinucleotide-binding subunit and conserved amino acid sequences of the cytochrome b subunit of SDHs in propionate-oxidizing bacteria suggests that membrane-bound SDHs possess specific conserved amino acid residues that are strongly associated with efficient succinate oxidation in syntrophic propionate-oxidizing bacteria.

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来源期刊
Microbes and Environments
Microbes and Environments 生物-生物工程与应用微生物
CiteScore
4.10
自引率
13.60%
发文量
66
审稿时长
3 months
期刊介绍: Microbial ecology in natural and engineered environments; Microbial degradation of xenobiotic compounds; Microbial processes in biogeochemical cycles; Microbial interactions and signaling with animals and plants; Interactions among microorganisms; Microorganisms related to public health; Phylogenetic and functional diversity of microbial communities; Genomics, metagenomics, and bioinformatics for microbiology; Application of microorganisms to agriculture, fishery, and industry; Molecular biology and biochemistry related to environmental microbiology; Methodology in general and environmental microbiology; Interdisciplinary research areas for microbial ecology (e.g., Astrobiology, and Origins of Life); Taxonomic description of novel microorganisms with ecological perspective; Physiology and metabolisms of microorganisms; Evolution of genes and microorganisms; Genome report of microorganisms with ecological perspective.
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