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剖析大肠杆菌氢化酶在生物制氢中的作用。

Dissecting the roles of Escherichia coli hydrogenases in biohydrogen production.

作者信息

Redwood Mark D, Mikheenko Iryna P, Sargent Frank, Macaskie Lynne E

机构信息

Unit of Functional Bionanomaterials, School of Biosciences, University of Birmingham, Edgbaston, Birmingham, UK.

出版信息

FEMS Microbiol Lett. 2008 Jan;278(1):48-55. doi: 10.1111/j.1574-6968.2007.00966.x. Epub 2007 Nov 6.

Abstract

Escherichia coli can perform at least two modes of anaerobic hydrogen metabolism and expresses at least two types of hydrogenase activity. Respiratory hydrogen oxidation is catalysed by two 'uptake' hydrogenase isoenzymes, hydrogenase -1 and -2 (Hyd-1 and -2), and fermentative hydrogen production is catalysed by Hyd-3. Harnessing and enhancing the metabolic capability of E. coli to perform anaerobic mixed-acid fermentation is therefore an attractive approach for bio-hydrogen production from sugars. In this work, the effects of genetic modification of the genes encoding the uptake hydrogenases, as well as the importance of preculture conditions, on hydrogen production and fermentation balance were examined. In suspensions of resting cells pregrown aerobically with formate, deletions in Hyd-3 abolished hydrogen production, whereas the deletion of both uptake hydrogenases improved hydrogen production by 37% over the parent strain. Under fermentative conditions, respiratory H2 uptake activity was absent in strains lacking Hyd-2. The effect of a deletion in hycA on H2 production was found to be dependent upon environmental conditions, but H2 uptake was not significantly affected by this mutation.

摘要

大肠杆菌能够进行至少两种厌氧氢代谢模式,并表现出至少两种类型的氢化酶活性。呼吸性氢氧化作用由两种“吸收”氢化酶同工酶,即氢化酶-1和-2(Hyd-1和Hyd-2)催化,而发酵性产氢由Hyd-3催化。因此,利用并增强大肠杆菌进行厌氧混合酸发酵的代谢能力是一种从糖类生产生物氢的有吸引力的方法。在这项工作中,研究了编码吸收氢化酶的基因的基因改造以及预培养条件对产氢和发酵平衡的影响。在用甲酸盐进行好氧预生长的静息细胞悬浮液中,Hyd-3的缺失消除了产氢,而两种吸收氢化酶的缺失使产氢比亲本菌株提高了37%。在发酵条件下,缺乏Hyd-2的菌株中不存在呼吸性H2吸收活性。发现hycA缺失对H2产生的影响取决于环境条件,但该突变对H2吸收没有显著影响。

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