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Transcriptional Regulation of the Respiratory Genes in the Cyanobacterium Synechocystis sp. PCC 6803 during the Early Response to Glucose Feeding

机译:蓝藻蓝藻中呼吸基因的转录调控。 PCC 6803对葡萄糖喂养的早期反应

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摘要

The coordinated expression of the genes involved in respiration in the photosynthetic cyanobacterium Synechocystis sp. PCC 6803 during the early period of glucose (Glc) treatment is poorly understood. When photoautotrophically grown cells were supplemented with 10 mm Glc in the light or after a dark adaptation period of 14 h, significant increases in the respiratory activity, as determined by NAD(P)H turnover, respiratory O2 uptake rate, and cytosolic alkalization, were observed. At the same time, the transcript levels of 18 genes coding for enzymes associated with respiration increased with differential induction kinetics; these genes were classified into three groups based on their half-rising times. Transcript levels of the four genes gpi, zwf, pdhB, and atpB started to increase along with a net increase in NAD(P)H, while the onset of net NAD(P)H consumption coincided with an increase in those of the genes tktA, ppc, pdhD, icd, ndhD2, ndbA, ctaD1, cydA, and atpE. In contrast, the expression of the atpI/G/D/A/C genes coding for ATP synthase subunits was the slowest among respiratory genes and their expression started to accumulate only after the establishment of cytosolic alkalization. These differential effects of Glc on the transcript levels of respiratory genes were not observed by inactivation of the genes encoding the Glc transporter or glucokinase. In addition, several Glc analogs could not mimic the effects of Glc. Our findings suggest that genes encoding some enzymes involved in central carbon metabolism and oxidative phosphorylation are coordinately regulated at the transcriptional level during the switch of nutritional mode.
机译:光合作用蓝藻Synechocystis sp。中呼吸相关基因的协同表达。对葡萄糖(Glc)治疗早期阶段的PCC 6803知之甚少。当光合自养生长的细胞在光照或黑暗适应14小时后补充10 mm Glc时,呼吸活动显着增加,这取决于NAD(P)H转换,呼吸O2摄取率和胞质碱化。观测到的。同时,编码18种与呼吸有关的酶的基因的转录水平随诱导动力学的差异而增加。根据它们的半衰期,将这些基因分为三类。四个基因gpi,zwf,pdhB和atpB的转录水平随着NAD(P)H的净增加而开始增加,而净NAD(P)H消耗的开始与tktA基因的增加相吻合。 ,ppc,pdhD,icd,ndhD2,ndbA,ctaD1,cydA和atpE。相反,在呼吸基因中,编码ATP合酶亚基的atpI / G / D / A / C 基因的表达最慢。它们的表达仅在胞质碱化建立后才开始积累。通过使编码Glc转运蛋白或葡萄糖激酶的基因失活,未观察到Glc对呼吸基因的转录水平的这些不同作用。另外,几种Glc类似物不能模拟Glc的作用。我们的发现表明,在营养模式转换过程中,编码参与中央碳代谢和氧化磷酸化的某些酶的基因在转录水平上受到协调调控。

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