Lehrbereich Mikrobielle Genetik, Eberhard Karls Universität Tübingen, Waldhäuserstr. 70/8, 72076 Tübingen, Germany.
Microb Biotechnol. 2008 Jan;1(1):2-16. doi: 10.1111/j.1751-7915.2007.00001.x.
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.
基于 Tet 阻遏蛋白(tet 调控)的诱导基因表达是分子遗传学中广泛应用的工具。在其原始环境中,Tet 阻遏蛋白(TetR)负调控细菌中的四环素(tc)抗性。在 tc 的存在下,TetR 被诱导并从其同源 DNA 序列 tetO 上脱离,从而表达 tc 外排蛋白。本文全面概述了细菌中的 tet 调控,并说明了不同调控结构的参数。虽然其中一些设置依赖于天然的 tet 控制区域,如转座子 Tn10 上发现的那些,但这种系统的高效变体最近已被适应于不同的革兰氏阴性和革兰氏阳性细菌。新型 tet 可控人工或杂交启动子被用于目标基因表达。它们由在组成型或自调控方式下表达的不同水平的调节剂控制。由此产生的 tet 系统已被用于各种用途。我们讨论了带有 tc 敏感启动子的整合元件,以及革兰氏阴性和革兰氏阳性细菌中的 tet 调控,用于分析目的和蛋白质过表达。还概述了 TetR 作为四环素的体内生物传感器或在合成生物学构建体中的调节装置的用途。突出了不同调控设置的技术规格,最后介绍了 TetR 的最新发展,这可能会扩大原核 tet 系统在未来的应用。