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首页> 外文期刊>Biotechnology for Biofuels >A techno-practical method for overcoming the biotoxicity and volatility obstacles of butanol and butyric acid during whole-cell catalysis by Gluconobacter oxydans
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A techno-practical method for overcoming the biotoxicity and volatility obstacles of butanol and butyric acid during whole-cell catalysis by Gluconobacter oxydans

机译:一种技术实际的方法,用于克服丁醇和丁酸在全细胞催化期间丁醇和丁酸的挥发性障碍物葡萄糖杆菌催化剂

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摘要

Butyric acid is a platform chemical material, the production of which has been greatly stimulated by the diverse range of downstream applications in many industries. In particular, higher quality butyric acid used in food and medicine, is more dependent on microbiological production methods. Hence, the bio-oxidation of butanol to butyric acid has been identified as a promising method with good potential economic and environmental benefits. However, both butanol and butyric acid are usually intensively toxic to most microorganisms as well as the bio-oxidation pathway. To develop a green, efficient and competitive microbiological method is the primary work to overcome the bottleneck of butyric acid industry. A combined bioprocess was designed with alternative whole-cell catalysis for butyric acid bio-conversion from butanol by Gluconobacter oxydans in a sealed-oxygen supply bioreactor (SOS). In the operation system, the escape of volatile substrates and toxic chemicals to cells can be avoided by the use of a sealed bioreactor, combined with the rejuvenation of cells by supplying energy co-factors. Finally, during a one-batch whole-cell catalysis, the utilization rate of substrate increased from 56.6 to 96.0% by the simple skill. Additionally, the techno-practical bioprocess can realize the purpose of cell-recycling technology through the rejuvenation effect of co-factor. Finally, we obtained 135.3?g/L butyric acid and 216.7?g/L sorbose during a 60-h whole-cell catalysis. This techno-practical technology provides a promising approach to promote the industrial production of butyric acid with more competitiveness. The techno-practical biotechnology has powerfully promoted the process of butyric acid production by microorganisms, especially makes up for the lack of aerobic fermentation in the industry, and surmounts the shortcomings of traditional anaerobic fermentation. At the same time, this technically practical system provides a promising approach for the promotion of the industrial production of butyric acid in a more competitive manner.
机译:丁酸是一种平台化学材料,其生产在许多行业中的不同下游应用范围都受到了极大的刺激。特别是,食品和药物中使用的更高质量的丁酸,更依赖于微生物生产方法。因此,已将丁醇对丁酸生物氧化作为具有良好经济和环境效益的有希望的方法。然而,丁醇和丁酸的丁醇通常对大多数微生物以及生物氧化途径通常会集中毒性。发展绿色,高效且竞争性的微生物方法是克服丁酸工业瓶颈的主要工作。将组合的生物过程设计有替代的全细胞催化,用于由丁醇由葡萄糖杆菌在密封氧气供应生物反应器(SOS)中的葡聚糖生物转化。在操作系统中,通过使用密封的生物反应器可以避免挥发性衬底和有毒化学物质对细胞的逃逸,并通过供应能量协调来结合细胞的再生。最后,在单批全细胞催化期间,通过简单的技能,基材的利用率从56.6增加到96.0%。此外,技术实际的生物处理可以通过共造成的恢复效应来实现细胞回收技术的目的。最后,在60-H全细胞催化期间,我们获得了135.3克/ L丁酸和216.7?G / L山梨糖。这种技术实用技术提供了一种有希望的方法,促进丁酸的产业生产,具有更多竞争力。技术实际的生物技术有力地促进了微生物的丁酸产量的过程,特别是在行业中缺乏有氧发酵,并超越了传统的厌氧发酵的缺点。与此同时,这次技术实际的系统提供了促进丁酸产业生产以更具竞争力的方式的有希望的方法。

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