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首页> 外文期刊>Applied Microbiology and Biotechnology >Acetobacter pasteurianus metabolic change induced by initial acetic acid to adapt to acetic acid fermentation conditions
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Acetobacter pasteurianus metabolic change induced by initial acetic acid to adapt to acetic acid fermentation conditions

机译:初始乙酸诱导的acetobacter巴氏杀菌剂改变,适应乙酸发酵条件

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Initial acetic acid can improve the ethanol oxidation rate of acetic acid bacteria for acetic acid fermentation. In this work, Acetobacter pasteurianus was cultured in ethanol-free medium, and energy production was found to increase by 150% through glucose consumption induced by initial acetic acid. However, oxidation of ethanol, instead of glucose, became the main energy production pathway when upon culturing ethanol containing medium. Proteome assay was used to analyze the metabolism change induced by initial acetic acid, which provided insight into carbon metabolic and energy regulation of A. pasteurianus to adapt to acetic acid fermentation conditions. Results were further confirmed by quantitative real-time PCR. In summary, decreased intracellular ATP as a result of initial acetic acid inhibition improved the energy metabolism to produce more energy and thus adapt to the acetic acid fermentation conditions. A. pasteurianus upregulated the expression of enzymes related to TCA and ethanol oxidation to improve the energy metabolism pathway upon the addition of initial acetic acid. However, enzymes involved in the pentose phosphate pathway, the main pathway of glucose metabolism, were downregulated to induce a change in carbon metabolism. Additionally, the enhancement of alcohol dehydrogenase expression promoted ethanol oxidation and strengthened the acetification rate, thereby producing a strong proton motive force that was necessary for energy production and cell tolerance to acetic acid.
机译:初始乙酸可以改善乙酸菌的乙醇氧化速率用于乙酸发酵。在这项工作中,乙酰杆菌在无乙醇培养基中培养,并且发现能量产生通过初始乙酸诱导的葡萄糖消耗增加150%。然而,乙醇氧化而不是葡萄糖,当培养含乙醇培养基时,成为主要能量生产途径。蛋白质组测定用于分析初始乙酸诱导的代谢变化,这为A. Vireceurianus的碳代谢和能量调节提供了适应乙酸发酵条件的含量。通过定量实时PCR进一步证实结果。总之,由于初始乙酸抑制而降低细胞内ATP,改善了能量代谢以产生更多能量,从而适应乙酸发酵条件。 A.巴特氏霉属植物上调了与TCA和乙醇氧化有关的酶的表达,以改善加入初始乙酸时的能量代谢途径。然而,下调葡萄糖代谢的戊糖型致磷酸磷酸盐途径的酶,以诱导碳代谢的变化。另外,醇脱氢酶表达的增强促进了乙醇氧化并加强了乙酸化速率,从而产生了能量产生和对乙酸的细胞耐受性所需的强型质子动力。

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