Literature DB >> 24981852

Cloning, expression and characterization of glycerol dehydrogenase involved in 2,3-butanediol formation in Serratia marcescens H30.

Liaoyuan Zhang1, Quanming Xu, Xiaoqian Peng, Boheng Xu, Yuehao Wu, Yulong Yang, Shujing Sun, Kaihui Hu, Yaling Shen.   

Abstract

The meso-2,3-butanediol dehydrogenase (meso-BDH) from S. marcescens H30 is responsible for converting acetoin into 2,3-butanediol during sugar fermentation. Inactivation of the meso-BDH encoded by budC gene does not completely abolish 2,3-butanediol production, which suggests that another similar enzyme involved in 2,3-butanediol formation exists in S. marcescens H30. In the present study, a glycerol dehydrogenase (GDH) encoded by gldA gene from S. marcescens H30 was expressed in Escherichia coli BL21(DE3), purified and characterized for its properties. In vitro conversion indicated that the purified GDH could catalyze the interconversion of (3S)-acetoin/meso-2,3-butanediol and (3R)-acetoin/(2R,3R)-2,3-butanediol. (2S,3S)-2,3-Butanediol was not a substrate for the GDH at all. Kinetic parameters of the GDH enzyme showed lower K m value and higher catalytic efficiency for (3S/3R)-acetoin in comparison to those for (2R,3R)-2,3-butanediol and meso-2,3-butanediol, implying its physiological role in favor of 2,3-butanediol formation. Maximum activity for reduction of (3S/3R)-acetoin and oxidations of meso-2,3-butanediol and glycerol was observed at pH 8.0, while it was pH 7.0 for diacetyl reduction. The enzyme exhibited relative high thermotolerance with optimum temperature of 60 °C in the oxidation-reduction reactions. Over 60 % of maximum activity was retained at 70 °C. Additionally, the GDH activity was significantly enhanced for meso-2,3-BD oxidation in the presence of Fe(2+) and for (3S/3R)-acetoin reduction in the presence of Mn(2+), while several cations inhibited its activity, particularly Fe(2+) and Fe(3+) for (3S/3R)-acetoin reduction. The properties provided potential application for single configuration production of acetoin and 2,3-butanediol .

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Year:  2014        PMID: 24981852     DOI: 10.1007/s10295-014-1472-x

Source DB:  PubMed          Journal:  J Ind Microbiol Biotechnol        ISSN: 1367-5435            Impact factor:   3.346


  25 in total

1.  Characterization and regulation of the 2,3-butanediol pathway in Serratia marcescens.

Authors:  Ben Rao; Liao Yuan Zhang; Jian'an Sun; Gang Su; Dongzhi Wei; Ju Chu; Jiawen Zhu; Yaling Shen
Journal:  Appl Microbiol Biotechnol       Date:  2011-10-09       Impact factor: 4.813

Review 2.  Biotechnological production of 2,3-butanediol--current state and prospects.

Authors:  E Celińska; W Grajek
Journal:  Biotechnol Adv       Date:  2009-05-13       Impact factor: 14.227

3.  Production of (2S,3S)-2,3-butanediol and (3S)-acetoin from glucose using resting cells of Klebsiella pneumonia and Bacillus subtilis.

Authors:  Zhen Liu; Jiayang Qin; Chao Gao; Dongliang Hua; Cuiqing Ma; Lixiang Li; Yu Wang; Ping Xu
Journal:  Bioresour Technol       Date:  2011-09-08       Impact factor: 9.642

4.  Protein family classification based on searching a database of blocks.

Authors:  S Henikoff; J G Henikoff
Journal:  Genomics       Date:  1994-01-01       Impact factor: 5.736

5.  Structures of iron-dependent alcohol dehydrogenase 2 from Zymomonas mobilis ZM4 with and without NAD+ cofactor.

Authors:  Ji-Hyun Moon; Hyun-Ju Lee; Suk-Youl Park; Jung-Mi Song; Mi-Young Park; Hye-Mi Park; Jiali Sun; Jeong-Hoh Park; Bo Yeon Kim; Jeong-Sun Kim
Journal:  J Mol Biol       Date:  2011-02-03       Impact factor: 5.469

6.  The Bacillus subtilis ydjL (bdhA) gene encodes acetoin reductase/2,3-butanediol dehydrogenase.

Authors:  Wayne L Nicholson
Journal:  Appl Environ Microbiol       Date:  2008-09-26       Impact factor: 4.792

7.  Microbial production of 2,3-butanediol by a mutagenized strain of Serratia marcescens H30.

Authors:  Liaoyuan Zhang; Yunlong Yang; Jian'an Sun; Yaling Shen; Dongzhi Wei; Jiawen Zhu; Ju Chu
Journal:  Bioresour Technol       Date:  2009-11-20       Impact factor: 9.642

8.  Enantioselective synthesis of pure (R,R)-2,3-butanediol in Escherichia coli with stereospecific secondary alcohol dehydrogenases.

Authors:  Yajun Yan; Chia-Chi Lee; James C Liao
Journal:  Org Biomol Chem       Date:  2009-08-03       Impact factor: 3.876

9.  Glycerol dehydrogenase plays a dual role in glycerol metabolism and 2,3-butanediol formation in Klebsiella pneumoniae.

Authors:  Yu Wang; Fei Tao; Ping Xu
Journal:  J Biol Chem       Date:  2014-01-15       Impact factor: 5.157

10.  Mechanism of 2,3-butanediol stereoisomer formation in Klebsiella pneumoniae.

Authors:  Chuan Chen; Dong Wei; Jiping Shi; Min Wang; Jian Hao
Journal:  Appl Microbiol Biotechnol       Date:  2014-02-18       Impact factor: 4.813

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  8 in total

1.  Adaptability of Klebsiella pneumoniae 2e, a Newly Isolated 1,3-Propanediol-Producing Strain, to Crude Glycerol as Revealed by Genomic Profiling.

Authors:  Jiangshan Ma; Huan Jiang; Stanton B Hector; Zhihong Xiao; Jilie Li; Rukuan Liu; Changzhu Li; Baiquan Zeng; Gao-Qiang Liu; Yonghua Zhu
Journal:  Appl Environ Microbiol       Date:  2019-05-02       Impact factor: 4.792

2.  Engineering of isoamylase: improvement of protein stability and catalytic efficiency through semi-rational design.

Authors:  Youran Li; Liang Zhang; Zhongyang Ding; Zhenghua Gu; Guiyang Shi
Journal:  J Ind Microbiol Biotechnol       Date:  2015-11-23       Impact factor: 3.346

3.  Mechanism of 2,3-butanediol stereoisomers formation in a newly isolated Serratia sp. T241.

Authors:  Liaoyuan Zhang; Zewang Guo; Jiebo Chen; Quanming Xu; Hui Lin; Kaihui Hu; Xiong Guan; Yaling Shen
Journal:  Sci Rep       Date:  2016-01-12       Impact factor: 4.379

Review 4.  Key enzymes catalyzing glycerol to 1,3-propanediol.

Authors:  Wei Jiang; Shizhen Wang; Yuanpeng Wang; Baishan Fang
Journal:  Biotechnol Biofuels       Date:  2016-03-10       Impact factor: 6.040

5.  Efficient (3S)-Acetoin and (2S,3S)-2,3-Butanediol Production from meso-2,3-Butanediol Using Whole-Cell Biocatalysis.

Authors:  Yuanzhi He; Feixue Chen; Meijing Sun; Huifang Gao; Zewang Guo; Hui Lin; Jiebo Chen; Wensong Jin; Yunlong Yang; Liaoyuan Zhang; Jun Yuan
Journal:  Molecules       Date:  2018-03-19       Impact factor: 4.411

6.  Production of diacetyl by metabolically engineered Enterobacter cloacae.

Authors:  Lijie Zhang; Yingxin Zhang; Qiuyuan Liu; Liying Meng; Mandong Hu; Min Lv; Kun Li; Chao Gao; Ping Xu; Cuiqing Ma
Journal:  Sci Rep       Date:  2015-03-12       Impact factor: 4.379

7.  Engineering Bacillus licheniformis for the production of meso-2,3-butanediol.

Authors:  Yimin Qiu; Jinyan Zhang; Lu Li; Zhiyou Wen; Christopher T Nomura; Shuilin Wu; Shouwen Chen
Journal:  Biotechnol Biofuels       Date:  2016-06-02       Impact factor: 6.040

8.  Metabolic engineering of Serratia marcescens MG1 for enhanced production of (3R)-acetoin.

Authors:  Xin Lv; Lu Dai; Fangmin Bai; Zhanqing Wang; Liaoyuan Zhang; Yaling Shen
Journal:  Bioresour Bioprocess       Date:  2016-11-28
  8 in total

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