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首页> 外文期刊>Applied biochemistry and biotechnology, Part A. enzyme engineering and biotechnology >Nitrate Metabolism Decreases the Steroidal Alcohol Byproduct Compared with Ammonium in Biotransformation of Phytosterol to Androstenedione by Mycobacterium neoaurum
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Nitrate Metabolism Decreases the Steroidal Alcohol Byproduct Compared with Ammonium in Biotransformation of Phytosterol to Androstenedione by Mycobacterium neoaurum

机译:硝酸盐代谢与氨基酮酚的生物转化中的氨基铵相比降低了甾体醇副产物,通过新牙杆菌与雄霉菌丁二醇酮

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摘要

In biotransformation of phytosterol to 4-androstene-3,17-dione (AD) by Mycobacterium, the steroidal alcohol (such as 22-hydroxy-23,24-bisnorchol-4-ene-3-one, HBC) was a main byproduct. To weaken the accumulation of this byproduct in sterol biotransformation, ammonium was substituted by nitrate as nitrogen resource. The nitrate was utilized by Mycobacterium and led to metabolic flux shift towards AD production. The ratio of AD/HBC increased maximally from 2.1 to 5.5 and AD production increased correspondently. In the meanwhile, the nitrate metabolism resulted in the decreased intracellular redox level (NADH/NAD(+)) maximally by 59.5% and a slight descent tendency with the increase of the nitrate concentrations. It indicated that the nitrate utilization effectively decreased the steroidal alcohol production by regulating intracellular redox level in sterol biotransformation. These results gave an insight into the mechanism of the steroidal alcohol formation in sterol biodegradation and provided a simple strategy to regulate the metabolic distribution.
机译:通过分枝杆菌的植物甾醇至4- androstene-3,17-dione(Ad)的生物转化,甾体醇(如22-羟基-23,24-苯甲烯-4-eNE-3-on-1,HBC)是主要的副产品。为了削弱甾醇生物转化中该副产物的积累,铵被硝酸盐作为氮资源取代。分枝杆菌利用硝酸盐,并导致代谢通量转变为广告生产。 AD / HBC的比例从2.1到5.5增加到5.5,并且广告产生相应增加。同时,硝酸盐代谢导致细胞内氧化还原水平(NADH / NAD(+))降低59.5%,随着硝酸盐浓度的增加,略微下降趋势。它表明,硝酸盐利用通过调节甾醇生物转化中的细胞内氧化还原水平有效地降低了甾体醇产量。这些结果深入了解甾醇生物降解中甾体醇形成的机制,并提供了一种规范代谢分布的简单策略。

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