Department of Bioscience, Tokyo University of Agriculture, Setagaya-ku, Tokyo 156-8502, Japan.
Department of Food Science and Technology, Tokyo University of Agriculture, Abashiri, Hokkaido 099-2493, Japan.
Microbiology (Reading). 2014 Feb;160(Pt 2):340-352. doi: 10.1099/mic.0.068726-0. Epub 2013 Dec 4.
Amphibacillus xylanus grows at the same rate and with the same cell yield under aerobic and anaerobic conditions. Under aerobic conditions, it exhibits vigorous oxygen consumption in spite of lacking a respiratory system and haem catalase. To understand the adaptive response of A. xylanus to oxidative stresses, a genomic analysis of A. xylanus was conducted. The analysis showed that A. xylanus has the genes of four metabolic systems: two pyruvate metabolic pathways, a glycolytic metabolic pathway and an NADH oxidase (Nox)-AhpC (Prx) system. A transcriptional study confirmed that A. xylanus has these metabolic systems. Moreover, genomic analysis revealed the presence of two genes for NADH oxidase (nox1 and nox2), both of which were identified in the transcriptional analysis. The nox1 gene in A. xylanus was highly expressed under normal aerobic conditions but that of nox2 was not. A purification study of NADH oxidases indicated that the gene product of nox1 is a primary metabolic enzyme responsible for metabolism of both oxygen and reactive oxygen species. A. xylanus was successfully grown under forced oxidative stress conditions such as 0.1 mM H2O2, 0.3 mM paraquat and 80 % oxygen. Proteomic analysis revealed that manganese SOD, Prx, pyruvate dehydrogenase complex E1 and E3 components, and riboflavin synthase β-chain are induced under normal aerobic conditions, and the other proteins except the five aerobically induced proteins were not induced under forced oxidative stress conditions. Taken together, the present findings indicate that A. xylanus has a unique defence system against forced oxidative stress.
解木聚糖芽孢杆菌在有氧和无氧条件下以相同的速率和相同的细胞产率生长。在有氧条件下,尽管缺乏呼吸系统和血红素过氧化氢酶,它仍表现出旺盛的耗氧量。为了了解解木聚糖芽孢杆菌对氧化应激的适应反应,对解木聚糖芽孢杆菌进行了基因组分析。分析表明,解木聚糖芽孢杆菌具有四种代谢系统的基因:两种丙酮酸代谢途径、一种糖酵解代谢途径和 NADH 氧化酶(Nox)-AhpC(Prx)系统。转录研究证实了解木聚糖芽孢杆菌具有这些代谢系统。此外,基因组分析显示存在两种 NADH 氧化酶(nox1 和 nox2)的基因,这两种基因在转录分析中均被鉴定。解木聚糖芽孢杆菌中的 nox1 基因在正常有氧条件下高度表达,但 nox2 基因则不然。NADH 氧化酶的纯化研究表明,nox1 基因的产物是一种主要的代谢酶,负责氧气和活性氧物质的代谢。在 0.1mM H2O2、0.3mM 百草枯和 80%氧气等强制氧化应激条件下,成功地使解木聚糖芽孢杆菌生长。蛋白质组学分析表明,在正常有氧条件下诱导锰 SOD、Prx、丙酮酸脱氢酶复合物 E1 和 E3 组分和核黄素合酶β链,而在强制氧化应激条件下除了这 5 种需氧诱导蛋白外,其他蛋白均未被诱导。总之,目前的研究结果表明,解木聚糖芽孢杆菌具有独特的防御强制氧化应激的系统。