Department of Molecular Medicine, University of Padova, Padova, Italy.
Institute of Infectious Disease and Molecular Medicine, University of Cape Town UCT, Cape Town, South Africa.
Sci Rep. 2019 Apr 8;9(1):5783. doi: 10.1038/s41598-019-42319-2.
Tightly regulated gene expression systems are powerful tools to study essential genes and characterize potential drug targets. In a past work we reported the construction of a very stringent and versatile repressible promoter system for Mycobacterium tuberculosis based on two different repressors (TetR/Pip-OFF system). This system, causing the repression of the target gene in response to anhydrotetracycline (ATc), has been successfully used in several laboratories to characterize essential genes in different mycobacterial species both in vitro and in vivo. One of the limits of this system was its instability, leading to the selection of mutants in which the expression of the target gene was no longer repressible. In this paper we demonstrated that the instability was mainly due either to the loss of the integrative plasmid carrying the genes encoding the two repressors, or to the selection of a frameshift mutation in the gene encoding the repressors Pip. To solve these problems, we (i) constructed a new integrative vector in which the gene encoding the integrase was deleted to increase its stability, and (ii) developed a new integrative vector carrying the gene encoding Pip to introduce a second copy of this gene in the chromosome. The use of these new tools was shown to reduce drastically the selection of escape mutants.
基因表达调控系统是研究必需基因和鉴定潜在药物靶点的有力工具。在过去的工作中,我们基于两种不同的抑制剂(TetR/Pip-OFF 系统)构建了一种针对结核分枝杆菌的严格且多功能的可诱导抑制型启动子系统。该系统通过响应脱羟四环素(ATc)抑制靶基因的表达,已成功应用于多个实验室,用于鉴定不同分枝杆菌物种中体外和体内的必需基因。该系统的一个局限性是其不稳定性,导致选择出靶基因表达不再受抑制的突变体。在本文中,我们证明这种不稳定性主要是由于携带编码两个抑制剂的基因的整合质粒丢失,或者是由于编码抑制剂 Pip 的基因发生框移突变所致。为了解决这些问题,我们 (i) 构建了一个新的整合载体,其中删除了编码整合酶的基因,以提高其稳定性,(ii) 开发了一个携带编码 Pip 的基因的新整合载体,在染色体中引入该基因的第二个拷贝。这些新工具的使用显著降低了逃逸突变体的选择。