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甲基营养型芽孢杆菌AM1中四氢甲蝶呤连接途径的甲醛解毒作用

Formaldehyde-detoxifying role of the tetrahydromethanopterin-linked pathway in Methylobacterium extorquens AM1.

作者信息

Marx Christopher J, Chistoserdova Ludmila, Lidstrom Mary E

机构信息

Department of Microbiology, University of Washington, Seattle, Washington 98195, USA.

出版信息

J Bacteriol. 2003 Dec;185(24):7160-8. doi: 10.1128/JB.185.23.7160-7168.2003.

DOI:10.1128/JB.185.23.7160-7168.2003
PMID:14645276
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC296243/
Abstract

The facultative methylotroph Methylobacterium extorquens AM1 possesses two pterin-dependent pathways for C(1) transfer between formaldehyde and formate, the tetrahydrofolate (H(4)F)-linked pathway and the tetrahydromethanopterin (H(4)MPT)-linked pathway. Both pathways are required for growth on C(1) substrates; however, mutants defective for the H(4)MPT pathway reveal a unique phenotype of being inhibited by methanol during growth on multicarbon compounds such as succinate. It has been previously proposed that this methanol-sensitive phenotype is due to the inability to effectively detoxify formaldehyde produced from methanol. Here we present a comparative physiological characterization of four mutants defective in the H(4)MPT pathway and place them into three different phenotypic classes that are concordant with the biochemical roles of the respective enzymes. We demonstrate that the analogous H(4)F pathway present in M. extorquens AM1 cannot fulfill the formaldehyde detoxification function, while a heterologously expressed pathway linked to glutathione and NAD(+) can successfully substitute for the H(4)MPT pathway. Additionally, null mutants were generated in genes previously thought to be essential, indicating that the H(4)MPT pathway is not absolutely required during growth on multicarbon compounds. These results define the role of the H(4)MPT pathway as the primary formaldehyde oxidation and detoxification pathway in M. extorquens AM1.

摘要

兼性甲基营养菌嗜甲基菌AM1拥有两条依赖蝶呤的C(1)在甲醛和甲酸之间转移的途径,即四氢叶酸(H(4)F)连接途径和四氢甲烷蝶呤(H(4)MPT)连接途径。这两条途径对于在C(1)底物上生长都是必需的;然而,H(4)MPT途径缺陷的突变体在琥珀酸等多碳化合物上生长时表现出一种独特的表型,即被甲醇抑制。此前有人提出,这种对甲醇敏感的表型是由于无法有效解毒甲醇产生的甲醛。在此,我们对四个H(4)MPT途径缺陷的突变体进行了比较生理学特征分析,并将它们分为三个不同的表型类别,这些类别与各自酶的生化作用一致。我们证明,嗜甲基菌AM1中存在的类似H(4)F途径无法履行甲醛解毒功能,而与谷胱甘肽和NAD(+)相关的异源表达途径可以成功替代H(4)MPT途径。此外,在先前认为必不可少的基因中产生了缺失突变体,这表明在多碳化合物上生长期间,H(4)MPT途径并非绝对必需。这些结果确定了H(4)MPT途径在嗜甲基菌AM1中作为主要甲醛氧化和解毒途径的作用。

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Formaldehyde-detoxifying role of the tetrahydromethanopterin-linked pathway in Methylobacterium extorquens AM1.甲基营养型芽孢杆菌AM1中四氢甲蝶呤连接途径的甲醛解毒作用
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本文引用的文献

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Methylotrophy in Methylobacterium extorquens AM1 from a genomic point of view.从基因组角度看嗜甲基甲基杆菌AM1中的甲基营养作用
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The tungsten-containing formate dehydrogenase from Methylobacterium extorquens AM1: purification and properties.来自嗜甲基菌AM1的含钨甲酸脱氢酶:纯化及性质
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Novel methylotrophy genes of Methylobacterium extorquens AM1 identified by using transposon mutagenesis including a putative dihydromethanopterin reductase.利用转座子诱变鉴定出的嗜甲基生丝微菌AM1的新型甲基营养基因,包括一种假定的二氢甲蝶呤还原酶。
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Purification, overproduction, and partial characterization of beta-RFAP synthase, a key enzyme in the methanopterin biosynthesis pathway.β-RFAP合酶的纯化、过量表达及部分特性鉴定,该酶是甲蝶呤生物合成途径中的关键酶。
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Generation of formate by the formyltransferase/hydrolase complex (Fhc) from Methylobacterium extorquens AM1.来自扭脱甲基杆菌AM1的甲酰基转移酶/水解酶复合物(Fhc)生成甲酸盐。
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