Contribution of Hydrogenase 2 to Stationary Phase H2 Production by Escherichia coli During Fermentation of Glycerol

被引:0
作者
Karen Trchounian
Basem Soboh
R. Gary Sawers
Armen Trchounian
机构
[1] Yerevan State University,Department of Biophysics
[2] Martin-Luther University Halle-Wittenberg,Institute of Microbiology
[3] Yerevan State University,Department of Microbiology & Plants and Microbes Biotechnology
来源
Cell Biochemistry and Biophysics | 2013年 / 66卷
关键词
Hydrogenase 2; Glycerol fermentation; Hydrogenase activity; Hydrogen production; pH;
D O I
暂无
中图分类号
学科分类号
摘要
Escherichia coli has four hydrogenases (Hyd), three genes of which are encoded by the hya, hyb, and hyc operons. The proton-reducing and hydrogen-oxidizing activities of Hyd-2 (hyb) were analyzed in whole cells grown to stationary phase and cell extracts, respectively, during glycerol fermentation using novel double mutants. H2 production rate at pH 7.5 was decreased by ~3.5- and ~7-fold in hya and hyc (HDK 103) or hyb and hyc (HDK 203) operon double mutants, respectively, compared with the wild type. At pH 6.5, H2 production decreased by ~2- and ~5-fold in HDK103 and HDK203, respectively, compared with the wild type. At pH 5.5, H2 production was reduced by ~4.5-fold in the mutants compared with the wild type. The total hydrogen-oxidizing activity was shown to depend on the pH of the growth medium in agreement with previous findings and was significantly reduced in the HDK103 or HDK203 mutants. At pH 7.5, Hyd-2 activity was 0.26 U (mg protein)−1 and Hyd-1 activity was 0.1 U (mg protein)−1. As the pH of the growth medium decreased to 6.5, Hyd-2 activity was 0.16 U (mg protein)−1, and Hyd-1 was absent. Surprisingly, at pH 5.5, there was an increase in Hyd-2 activity (0.33 U mg protein)−1 but not in that of Hyd-1. These findings show a major contribution of Hyd-2 to H2 production during glycerol fermentation that resulted from altered metabolism which surprisingly influenced proton reduction.
引用
收藏
页码:103 / 108
页数:5
相关论文
共 132 条
  • [1] Khanna S(2011)Microbial conversion of glycerol: Present status and future prospects Critical Reviews in Biotechnology 32 235-262
  • [2] Goyal A(2012)Multiple and reversible hydrogenases for hydrogen production by Critical Reviews in Biochemistry and Molecular Biology 47 236-249
  • [3] Moholkar VS(1992): Dependence on fermentation substrate, pH and F Molecular Microbiology 6 1523-1532
  • [4] Trchounian K(1997)F Microbiology 143 3633-3647
  • [5] Poladyan A(2001)-ATPase Microbiology 147 3093-3104
  • [6] Vassilian A(2002)Mutational analysis of the operon ( Journal of Bacteriology 184 6642-6653
  • [7] Trchounian A(2002)) determining hydrogenase 3 formation in FEBS Letters 516 172-178
  • [8] Sauter M(2004)A 12-cistron Journal of Bacteriology 186 580-587
  • [9] Bohm R(2007) operon ( Applied Microbiology and Biotechnology 76 1036-1042
  • [10] Bock A(1999)) encoding a putative proton-translocating formate hydrogenlyase system Journal of Bacteriology 181 5250-5256