Bai Fengwu
Dalian University of Technology
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Publication
Featured researches published by Bai Fengwu.
Biotechnology Techniques | 1998
Liu Chuanbin; Xie Jian; Bai Fengwu; Su Zhiguo
Fresh cells of Saccharomyces cerevisiae were disrupted after 60 s microwave irradiation, and trehalase activity was simultaneously destroyed. Trehalose could be extracted from microwave-treated yeast by water in 10 min at room temperature.
Plasma Science & Technology | 2014
Chen Huixia; Xiu Zhilong; Bai Fengwu
Xylose fermentation is essential for ethanol production from lignocellulosic biomass. Exposure of the xylose-fermenting yeast Candida shehatae (C. shehatae) CICC1766 to atmospheric pressure dielectric barrier discharge (DBD) air plasma yields a clone (designated as C81015) with stability, which exhibits a higher ethanol fermentation rate from xylose, giving a maximal enhancement in ethanol production of 36.2% compared to the control (untreated). However, the biomass production of C81015 is lower than that of the control. Analysis of the NADH (nicotinamide adenine dinucleotide)- and NADPH (nicotinamide adenine dinucleotide phosphate)-linked xylose reductases and NAD+-linked xylitol dehydrogenase indicates that their activities are enhanced by 34.1%, 61.5% and 66.3%, respectively, suggesting that the activities of these three enzymes are responsible for improving ethanol fermentation in C81015 with xylose as a substrate. The results of this study show that DBD air plasma could serve as a novel and effective means of generating microbial strains that can better use xylose for ethanol fermentation.
Archive | 2018
何艳艳; He Yanyan; 孜力汗; Zi Lihan; 张宝会; Zhang Baohui; 许建韧; Xu Jianren; 王丹丹; Wang Dandan; 白凤武; Bai Fengwu
By-products released from pretreatment process of lignocellulose seriously hinder the development of cellulosic fuel ethanol. Therefore, the great way to increase the efficiency of cellulosic ethanol production is improvement of Saccharomyces cerevisiae tolerance to these inhibitors. In this work, the effects of LCB4 gene overexpression on cell growth and ethanol fermentation in S. cerevisiae S288C under acetic acid, furfural and vanillin stresses were studied. Compared to the control strain S288C-HO, the recombinant strain S288C-LCB4 grew better on YPD solid medium containing 10 g/L acetic acid, 1.5 g/L furfural and 1 g/L vanillin. Ethanol yields of recombinant strain S288C-LCB4 were 0.85 g/(L·h), 0.76 g/(L·h) and 1.12 g/(L·h) when 10 g/L acetic acid, 3 g/L furfural and 2 g/L vanillin were supplemented into the fermentation medium respectively, which increased by 34.9%, 85.4% and 330.8% than the control strain S288C-HO. Meanwhile, ethanol fermentation time was reduced by 30 h and 44 h under furfural and vanillin stresses respectively. Further metabolites analysis in fermentation broth showed that the recombinant strain produced more protective compounds, such as glycerol, trehalose and succinic acid, than the control strain, which could be the reason for enhancing strain tolerance to these inhibitors from pretreatment process of lignocellulose. The results indicated that overexpression of LCB4 gene could significantly improve ethanol fermentation in S. cerevisiae S288C under acetic acid, furfural and vanillin stresses.
CIESC Journal | 2011
Bai Fengwu
Archive | 2014
Zhao Xinqing; Wan Chun; Bai Fengwu
Archive | 2013
Bai Fengwu; Zhao Xinqing; He Leiyu; Li Qian; Li Fan
Archive | 2014
Zhao Xinqing; Zuo Qi; Bai Fengwu
Archive | 2013
Yuan Wenjie; Li Nannan; Ren JianGang; Xin Chengxun; Bai Fengwu
The Chinese Journal of Process Engineering | 2010
Bai Fengwu
Archive | 2016
Xu Youhai; Liu Chenguang; Ma Zhongyi; Bai Fengwu; Ning Yanchun; Wang Shujuan; Hu Shiyang; Jin Gang