Regulation of lactate metabolism in the acetogenic bacterium Acetobacterium woodii

被引:34
作者
Schoelmerich, Marie Charlotte [1 ,3 ]
Katsyv, Alexander [1 ]
Sung, Woung [1 ]
Mijic, Vanessa [1 ]
Wiechmann, Anja [1 ]
Kottenhahn, Patrick [1 ]
Baker, Jonathan [2 ]
Minton, Nigel Peter [2 ]
Mueller, Volker [1 ]
机构
[1] Goethe Univ Frankfurt, Mol Microbiol & Bioenerget, D-60438 Frankfurt, Germany
[2] Univ Nottingham, SBRC, BBSRC EPSRC, Clostridia Res Grp, Nottingham, England
[3] Univ Hamburg, Dept Microbiol & Biotechnol, D-22609 Hamburg, Germany
基金
英国生物技术与生命科学研究理事会;
关键词
CORYNEBACTERIUM-GLUTAMICUM; HYDROGEN; GROWTH; MODEL; GENE; LLDR; NA+;
D O I
10.1111/1462-2920.14412
中图分类号
Q93 [微生物学];
学科分类号
071005 ; 100705 ;
摘要
Acetogenic bacteria compete in an energy-limited environment by coupling different metabolic routes to their central metabolism of CO2 fixation. The underlying regulatory mechanisms are often still not understood. In this work, we analysed how lactate metabolism is regulated in the model acetogen Acetobacterium woodii. Construction of a Delta lctCDEF mutant and growth analyses demonstrated that the genes are essential for growth on lactate. Subsequent bridging PCR and quantitative PCR analyses revealed that the lctBCDEF genes form an operon that was expressed only during lactate metabolism. The lctA gene was cloned, expressed in Escherichia coli and purified. LctA bound to the intergenic DNA region between lctA and the lct operon in electromobility shift assays, and binding was revoked in the presence of lactate. Further restriction site protection analyses consolidated the lactate-dependent binding of LctA and identified the binding site within the DNA. Cells grew mixotrophically on lactate and another energy source and showed no diauxic growth. From these data, we conclude that the catabolic lactate metabolism is encoded by the lct operon and its expression is negatively regulated by the DNA-binding repressor LctA.
引用
收藏
页码:4587 / 4595
页数:9
相关论文
共 30 条
[1]   Bioenergetic constraints for conversion of syngas to biofuels in acetogenic bacteria [J].
Bertsch, Johannes ;
Mueller, Volker .
BIOTECHNOLOGY FOR BIOFUELS, 2015, 8
[2]   Bacterial Na+-translocating ferredoxin: NAD+ oxidoreductase [J].
Biegel, Eva ;
Mueller, Volker .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (42) :18138-18142
[3]  
BRADFORD MM, 1976, ANAL BIOCHEM, V72, P248, DOI 10.1016/0003-2697(76)90527-3
[4]   EFFECT OF MOLECULAR-HYDROGEN AND CARBON-DIOXIDE ON CHEMO-ORGANOTROPHIC GROWTH OF ACETOBACTERIUM-WOODII AND CLOSTRIDIUM-ACETICUM [J].
BRAUN, K ;
GOTTSCHALK, G .
ARCHIVES OF MICROBIOLOGY, 1981, 128 (03) :294-298
[5]   MIXOTROPHY IN THE TERMITE GUT ACETOGEN, SPOROMUSA-TERMITIDA [J].
BREZNAK, JA ;
BLUM, JS .
ARCHIVES OF MICROBIOLOGY, 1991, 156 (02) :105-110
[6]  
BRYANT MP, 1972, AM J CLIN NUTR, V25, P1324
[8]   Old acetogens, new light [J].
Drake, Harold L. ;
Goessner, Anita S. ;
Daniel, Steven L. .
INCREDIBLE ANAEROBES: FROM PHYSIOLOGY TO GENOMICS TO FUELS, 2008, 1125 :100-128
[9]   An intermediate step in the evolution of ATPases -: a hybrid F0-V0 rotor in a bacterial Na+F1F0 ATP synthase [J].
Fritz, Michael ;
Klyszejko, Adriana L. ;
Morgner, Nina ;
Vonck, Janet ;
Brutschy, Bernd ;
Muller, Daniel J. ;
Meier, Thomas ;
Mueller, Volker .
FEBS JOURNAL, 2008, 275 (09) :1999-2007
[10]   Lactate Utilization Is Regulated by the FadR-Type Regulator LldR in Pseudomonas aeruginosa [J].
Gao, Chao ;
Hu, Chunhui ;
Zheng, Zhaojuan ;
Ma, Cuiqing ;
Jiang, Tianyi ;
Dou, Peipei ;
Zhang, Wen ;
Che, Bin ;
Wang, Yujiao ;
Lv, Min ;
Xu, Ping .
JOURNAL OF BACTERIOLOGY, 2012, 194 (10) :2687-2692