Inui Masayuki, Suda Masako, Okino Shohei, Nonaka Hiroshi, Puskás László G, Vertès Alain A, Yukawa Hideaki
Research Institute of Innovative Technology for the Earth (RITE), 9-2 Kizugawadai, Kizugawa, Kyoto, 619-0292, Japan.
Microbiology (Reading). 2007 Aug;153(Pt 8):2491-2504. doi: 10.1099/mic.0.2006/005587-0.
A transcriptional profiling of the metabolism of Corynebacterium glutamicum under oxygen deprivation conditions is reported. It was observed that the glucose consumption rate per cell when C. glutamicum cells were incubated under oxygen deprivation conditions was higher than that achieved by cells incubated under aerobic growth conditions. Furthermore, DNA microarray and quantitative RT-PCR analyses revealed that the genes of several key enzymes of the glycolytic and organic acid production pathways, including gapA, pgk, tpi, ppc, ldhA and mdh, were significantly upregulated under oxygen deprivation conditions. The corresponding enzymic activities consistently correlated with the regulation patterns of the genetic expression observed at the transcriptional level. Studies of lacZ fusions with the gapA, ldhA and mdh genes indicated not only that these genes are strongly induced at the onset of the stationary phase under aerobic growth conditions, but also that high expression levels are maintained under oxygen deprivation conditions. These results indicate that the genetic expression of several key metabolic enzymes in C. glutamicum cells incubated under oxygen deprivation conditions is chiefly regulated at the transcriptional level. The physiological consequence of the observed increased transcription under oxygen deprivation conditions is an increased rate of carbon source consumption, which is accompanied by a concomitant increase in organic acid production.
报道了谷氨酸棒杆菌在缺氧条件下代谢的转录谱分析。观察到,谷氨酸棒杆菌细胞在缺氧条件下培养时,每细胞的葡萄糖消耗率高于在有氧生长条件下培养的细胞。此外,DNA微阵列和定量RT-PCR分析表明,糖酵解和有机酸产生途径的几种关键酶的基因,包括gapA、pgk、tpi、ppc、ldhA和mdh,在缺氧条件下显著上调。相应的酶活性与转录水平上观察到的基因表达调控模式一致。对gapA、ldhA和mdh基因的lacZ融合研究表明,这些基因不仅在有氧生长条件下稳定期开始时强烈诱导,而且在缺氧条件下也维持高表达水平。这些结果表明,在缺氧条件下培养的谷氨酸棒杆菌细胞中几种关键代谢酶的基因表达主要在转录水平上受到调控。在缺氧条件下观察到的转录增加的生理后果是碳源消耗率增加,同时有机酸产量也随之增加。