The application of Tet repressor in prokaryotic gene regulation and expression

被引:117
作者
Bertram, Ralph [1 ,2 ]
Hillen, Wolfgang [2 ]
机构
[1] Univ Tubingen, Lehrbereich Mikrobielle Genet, D-72076 Tubingen, Germany
[2] Univ Erlangen Nurnberg, Lehrstuhl Mikrobiol, Inst Biol, D-91058 Erlangen, Germany
关键词
D O I
10.1111/j.1751-7915.2007.00001.x
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Inducible gene expression based upon Tet repressor (tet regulation) is a broadly applied tool in molecular genetics. In its original environment, Tet repressor (TetR) negatively controls tetracycline (tc) resistance in bacteria. In the presence of tc, TetR is induced and detaches from its cognate DNA sequence tetO, so that a tc antiporter protein is expressed. In this article, we provide a comprehensive overview about tet regulation in bacteria and illustrate the parameters of different regulatory architectures. While some of these set-ups rely on natural tet-control regions like those found on transposon Tn10, highly efficient variations of this system have recently been adapted to different Gram-negative and Gram-positive bacteria. Novel tet-controllable artificial or hybrid promoters were employed for target gene expression. They are controlled by regulators expressed at different levels either in a constitutive or in an autoregulated manner. The resulting tet systems have been used for various purposes. We discuss integrative elements vested with tc-sensitive promoters, as well as tet regulation in Gram-negative and Gram-positive bacteria for analytical purposes and for protein overproduction. Also the use of TetR as an in vivo biosensor for tetracyclines or as a regulatory device in synthetic biology constructs is outlined. Technical specifications underlying different regulatory set-ups are highlighted, and finally recent developments concerning variations of TetR are presented, which may expand the use of prokaryotic tet systems in the future.
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页码:2 / 16
页数:15
相关论文
共 117 条
[1]   Identification of Tet 39, a novel class of tetracycline resistance determinant in Acinetobacter spp. of environmental and clinical origin [J].
Agerso, Y ;
Guardabassi, L .
JOURNAL OF ANTIMICROBIAL CHEMOTHERAPY, 2005, 55 (04) :566-569
[2]   Allelic replacement in Staphylococcus aureus with inducible counter-selection [J].
Bae, T ;
Schneewind, O .
PLASMID, 2006, 55 (01) :58-63
[3]   Construction of an extended range whole-cell tetracycline biosensor by use of the tet(M) resistance gene [J].
Bahl, MI ;
Hansen, LH ;
Sorensen, SJ .
FEMS MICROBIOLOGY LETTERS, 2005, 253 (02) :201-205
[4]   In vivo detection and quantification of tetracycline by use of a whole-cell biosensor in the rat intestine [J].
Bahl, MI ;
Hansen, LH ;
Licht, TR ;
Sorensen, SJ .
ANTIMICROBIAL AGENTS AND CHEMOTHERAPY, 2004, 48 (04) :1112-1117
[5]   Continuous control in bacterial regulatory circuits [J].
Batchelor, E ;
Silhavy, TJ ;
Goulian, M .
JOURNAL OF BACTERIOLOGY, 2004, 186 (22) :7618-7625
[6]   Evaluation of a tetracycline-inducible promoter in Staphylococcus aureus in vitro and in vivo and its application in demonstrating the role of sigB in microcolony formation [J].
Bateman, BT ;
Donegan, NP ;
Jarry, TM ;
Palma, M ;
Cheung, AL .
INFECTION AND IMMUNITY, 2001, 69 (12) :7851-7857
[7]   Engineering stability in gene networks by autoregulation [J].
Becskei, A ;
Serrano, L .
NATURE, 2000, 405 (6786) :590-593
[8]   Gene regulation by tetracyclines - Constraints of resistance regulation in bacteria shape TetR for application in eukaryotes [J].
Berens, C ;
Hillen, W .
EUROPEAN JOURNAL OF BIOCHEMISTRY, 2003, 270 (15) :3109-3121
[9]  
Berens Christian, 2004, Genet Eng (N Y), V26, P255
[10]   Integrative elements for Bacillus subtilis yielding tetracycline-dependent growth phenotypes -: art. no. E153 [J].
Bertram, R ;
Köstner, M ;
Müller, J ;
Ramos, JV ;
Hillen, W .
NUCLEIC ACIDS RESEARCH, 2005, 33 (18) :1-11