Youduo Wu

Associate Professor   Supervisor of Master's Candidates

Gender:Male

Alma Mater:大连理工大学

Degree:Doctoral Degree

School/Department:生物工程学院

Discipline:Biochemical Engineering

Business Address:生物工程学院313

E-Mail:wuyouduo@dlut.edu.cn


Paper Publications

Impact of zinc supplementation on the improved fructose/xylose utilization and butanol production during acetone-butanol-ethanol fermentation

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Indexed by:Journal Papers

Date of Publication:2016-01-01

Journal:JOURNAL OF BIOSCIENCE AND BIOENGINEERING

Included Journals:SCIE、EI、PubMed、Scopus

Volume:121

Issue:1

Page Number:66-72

ISSN No.:1389-1723

Key Words:Acetone-butanol-ethanol fermentation; Clostridium acetobutylicum; Zinc supplementation; Fructose; Xylose

Abstract:Lignocellulosic biomass and dedicated energy crops such as Jerusalem artichoke are promising alternatives for bio-butanol production by solventogenic clostridia. However, fermentable sugars such as fructose or xylose released from the hydrolysis of these feedstocks were subjected to the incomplete utilization by the strains, leading to relatively low butanol production and productivity. When 0.001 g/L ZnSO4 center dot 7H(2)0 was supplemented into the medium containing fructose as sole carbon source, 12.8 g/L of butanol was achieved with butanol productivity of 0.089 g/L/h compared to only 4.5 g/L of butanol produced with butanol productivity of 0.028 g/L/h in the control without zinc supplementation. Micronutrient zinc also led to the improved butanol production up to 83 g/L derived from 45.2 g/L xylose as sole carbon source with increasing butanol productivity by 31.7%. Moreover, the decreased acids production was observed under the zinc supplementation condition, resulting in the increased butanol yields of 0.202 g/g-fructose and 0.184 g/g-xylose, respectively. Similar improvements were also observed with increasing butanol production by 130.2 % and 8.5 %, butanol productivity by 203.4% and 18.4%, respectively, in acetone-butanol-ethanol fermentations from sugar mixtures of fructose/glucose (4:1) and xylose/glucose (1:2) simulating the hydrolysates of Jerusalem artichoke tubers and corn stover. The results obtained from transcriptional analysis revealed that zinc may have regulatory mechanisms for the sugar transport and metabolism of Clostridium acetobutylicum L7. Therefore, micronutrient zinc supplementation could be an effective way for economic development of butanol production derived from these low-cost agricultural feedstocks. (C) 2015, The Society for Biotechnology, Japan. All rights reserved.

Pre One:Synergistic effect of calcium and zinc on glucose/xylose utilization and butanol tolerance of Clostridium acetobutylicum

Next One:Improvements of Metabolites Tolerance in Clostridium acetobutylicum by Micronutrient Zinc Supplementation

Profile

讲师,硕士生导师,辽宁省微生物学会会员,大连市合成生物学应用转化工程技术研究中心成员。2017年毕业于大连理工大学生物工程学院,获生物化工博士学位,从事木质纤维素资源催化转化与生物炼制的研究工作,同年入职大连理工大学生物工程学院担任讲师,现主要从事农业及养殖业废弃物资源化利用及微生物制剂产品开发方面的研究工作。2019年被大连理工大学与大连赛姆生物工程技术有限公司联合招收为博士后,开展强化农业秸秆与畜禽粪污无害化处理的研究工作。目前已在Biotechnology for Biofuels、Bioresource Technology等国际期刊发表SCI学术论文10余篇,参与完成1部英文专著章节撰写,申请国家发明专利4项。在AIChE化工年会国际会议作大会报告2次。围绕生物能源与现代农业领域内的功能微生物资源进行开发与应用研究。(1)开发了农业秸秆类生物质高效催化转化生物丁醇的工程菌株,建立了经济环保的高强度发酵生产工艺,提升了纤维素丁醇生产的优势效益与竞争力。(2)针对农业秸秆与养殖业畜禽粪污等废弃物资源,驯化筛选优良降解活性的功能微生物菌株,开发高密度细胞发酵技术,制备高效复合生物菌剂,应用于生物法预处理木质纤维素以及快速堆肥生产有机肥等工艺,具有良好的社会效益与环境效益。