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首页> 外文期刊>Biotechnology Progress >Production of a desulfurization biocatalyst by two-stage fermentation andits application for the treatment of model and diesel oils
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Production of a desulfurization biocatalyst by two-stage fermentation andits application for the treatment of model and diesel oils

机译:两步发酵生产脱硫催化剂及其在模型油和柴油中的应用

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For the production of oil-desulfurizing biocatalyst, a two-stage fermentation strategy was adopted, in which the cell growth stage and desulfurization activity induction stage were separated. Sucrose was found to be the optimal carbon source for the growth of Gordonia nitida CYKS1. Magnesium sulfate was selected to be the sulfur source in the cell growth stage. The optimal ranges of sucrose and magnesium sulfate were 10-50 and 1-2.5 g L-1, respectively. Such a broad optimal concentration of sucrose made the fed-batch culture easy, while the sucrose concentration was maintained between 10-20 g L-1 in the actual operation. As a result, 92.6 g L-1 of cell mass was acquired by 120 h of fed-batch culture. This cell mass was over three times higher than a previously reported result, though the strain used was different. The desulfurization activity of the harvested cells from the first stage culture was induced by batch cultivation with dibenzothiophene as the sole sulfur source. The optimal induction time was found to be about 4 h. The resting-cell biocatalyst made from the induced cells was applied for the deep desulfurization of a diesel oil. It was observed that the sulfur content of the diesel oil decreased from 250 mg-sulfur L-oil(-1) to as low as 61 mg-sulfur L-oil(-1) in 20 h. It implied that the biocatalyst developed in this study had a good potential to be applied to a deep desulfurization process to produce ultralow-sulfur fuel oils.
机译:为了生产油脱硫生物催化剂,采用了两阶段发酵策略,其中将细胞生长阶段和脱硫活性诱导阶段分开。发现蔗糖是nitord nitida CYKS1生长的最佳碳源。硫酸镁被选为细胞生长阶段的硫源。蔗糖和硫酸镁的最佳范围分别为10-50和1-2.5 g L-1。如此广泛的蔗糖最佳浓度使补料分批培养变得容易,而在实际操作中蔗糖浓度维持在10-20 g L-1之间。结果,通过120h分批补料培养获得了92.6g L-1的细胞量。尽管使用的菌株不同,但该细胞质量比以前报道的结果高三倍以上。通过以二苯并噻吩为唯一硫源的分批培养来诱导从第一阶段培养物中收获的细胞的脱硫活性。发现最佳诱导时间为约4小时。由诱导细胞制成的静止细胞生物催化剂被用于柴油的深度脱硫。观察到,在20小时内,柴油中的硫含量从250 mg硫L-油(-1)降低至61 mg硫L-油(-1)。这表明本研究开发的生物催化剂具有良好的潜力,可用于深度脱硫工艺生产超低硫燃料油。

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