Production of Fumaric Acid by Bioconversion of Corncob Hydrolytes Using an Improved Rhizopus oryzae Strain

被引:0
作者
Xuefeng Wu
Qing Liu
Yongdong Deng
Xiaoju Chen
Zhi Zheng
Shaotong Jiang
Xingjiang Li
机构
[1] Hefei University of Technology,School of Food Science and Engineering
[2] Key Laboratory for Agricultural Products Processing of Anhui Province,College of Chemistry and Material Engineering
[3] Chaohu University,undefined
来源
Applied Biochemistry and Biotechnology | 2018年 / 184卷
关键词
Corncob hydrolytes; Furfural-resistant; Fumaric acid; Metabolic network;
D O I
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中图分类号
学科分类号
摘要
The use of microorganism fermentation for production of fumaric acid (FA), which is widely used in food, medicine, and other fields, can provide technical support for the FA industry. In this study, we aimed to increase the titer of FA production by using an improved Rhizopus oryzae WHT5, which was domesticated to obtain a furfural-resistant strain in corncob hydrolytes. The metabolic pathways and metabolic network of this strain were investigated, and the related enzymes and metabolic flux were analyzed. Metabolic pathway analysis showed that the R. oryzae WHT5 strain produced FA mainly through two pathways. One occurred in the cytoplasm and the other was a mitochondrial pathway. The key parameters of the fermentation process were analyzed. The FA titer was 49.05 g/L from corncob hydrolytes using R. oryzae WHT5 in a 7-L bioreactor. The use of a furfural-resistant strain developed through domestication effectively increased the titer of FA. This capacity of the microorganisms to produce high amounts of FA by bioconverting corncob hydrolyte can be further applied for industrial production of FA.
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页码:553 / 569
页数:16
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