Instituto de Tecnologia Química e Biológica-António Xavier, Universidade Nova de Lisboa, Oeiras, Portugal.
J Bacteriol. 2013 Oct;195(20):4753-60. doi: 10.1128/JB.00411-13. Epub 2013 Aug 23.
Sulfate-reducing bacteria are characterized by a high number of hydrogenases, which have been proposed to contribute to the overall energy metabolism of the cell, but exactly in what role is not clear. Desulfovibrio spp. can produce or consume H2 when growing on organic or inorganic substrates in the presence or absence of sulfate. Because of the presence of only two hydrogenases encoded in its genome, the periplasmic HynAB and cytoplasmic Ech hydrogenases, Desulfovibrio gigas is an excellent model organism for investigation of the specific function of each of these enzymes during growth. In this study, we analyzed the physiological response to the deletion of the genes that encode the two hydrogenases in D. gigas, through the generation of ΔechBC and ΔhynAB single mutant strains. These strains were analyzed for the ability to grow on different substrates, such as lactate, pyruvate, and hydrogen, under respiratory and fermentative conditions. Furthermore, the expression of both hydrogenase genes in the three strains studied was assessed through quantitative reverse transcription-PCR. The results demonstrate that neither hydrogenase is essential for growth on lactate-sulfate, indicating that hydrogen cycling is not indispensable. In addition, the periplasmic HynAB enzyme has a bifunctional activity and is required for growth on H2 or by fermentation of pyruvate. Therefore, this enzyme seems to play a dominant role in D. gigas hydrogen metabolism.
硫酸盐还原菌的特点是具有大量的氢化酶,这些氢化酶被认为有助于细胞的整体能量代谢,但具体作用尚不清楚。脱硫弧菌属可以在有或没有硫酸盐的情况下,利用有机或无机基质生长时产生或消耗 H2。由于其基因组中只编码了两种氢化酶,即周质 HynAB 和细胞质 Ech 氢化酶,因此脱硫弧菌属是研究这些酶在生长过程中的特定功能的理想模式生物。在这项研究中,我们通过生成ΔechBC 和 ΔhynAB 单突变株,分析了 D. gigas 中编码两种氢化酶的基因缺失对其生理反应的影响。这些菌株在呼吸和发酵条件下,对不同基质(如乳酸盐、丙酮酸和氢气)的生长能力进行了分析。此外,通过定量反转录 PCR 评估了三种研究菌株中两种氢化酶基因的表达情况。结果表明,在乳酸盐-硫酸盐上生长时,两种氢化酶都不是必需的,这表明氢循环并非不可或缺。此外,周质 HynAB 酶具有双功能活性,是在 H2 或丙酮酸发酵条件下生长所必需的。因此,这种酶似乎在 D. gigas 的氢代谢中起主导作用。