Deng Shuang, Stein Richard A, Higgins N Patrick
Department of Biochemistry and Molecular Genetics, University of Alabama, Birmingham, AL 35294-2170, USA.
Proc Natl Acad Sci U S A. 2004 Mar 9;101(10):3398-403. doi: 10.1073/pnas.0307550101. Epub 2004 Mar 1.
Transcription and replication both influence and are influenced by superhelical changes in DNA. Explaining how supercoil movement is channeled in living chromosomes has been a major problem for 30 years. Transcription of membrane-associated proteins leads to localized hypersupercoiling of plasmid DNA, and this behavior indicates the presence of aberrant supercoil diffusion. Using the lambda Red recombination system, we constructed model domains in the Salmonella typhimurium chromosome to analyze supercoiling dynamics of regions encoding membrane proteins. Regulation of Tn10-derived tetracycline resistance involves a repressor, TetR, and a membrane-bound export pump, TetA. Strains deficient in TetR activity had 60-fold higher transcription levels (from P(A)) than TetR-positive strains. High tetA transcription caused a 10- to 80-fold decrease in the gammadelta resolution efficiency for the domain that includes the Tet module. Replacing tetA with genes encoding cytosolic proteins LacZ and Kan also caused the appearance of supercoil diffusion barriers in a defined region of the chromosome. In strains containing a functional TetR located next to a regulated lacZ reporter (P(R)tetR-P(A)lacZ), induction of transcription with chlortetracycline caused a 5-fold drop in resolution efficiency in the test domain interval. A short half-life resolvase showed that barriers appeared and disappeared over a 10- to 20-min span. These studies demonstrate the importance of transcription in chromosome structure and the plasticity of supercoil domains in bacterial chromosomes.
转录和复制既影响DNA的超螺旋变化,又受其影响。30年来,解释超螺旋运动如何在活染色体中传导一直是个主要问题。膜相关蛋白的转录会导致质粒DNA局部高度超螺旋化,这种现象表明存在异常的超螺旋扩散。我们利用λ Red重组系统在鼠伤寒沙门氏菌染色体中构建了模型结构域,以分析编码膜蛋白区域的超螺旋动力学。Tn10衍生的四环素抗性调控涉及一种阻遏蛋白TetR和一种膜结合输出泵TetA。TetR活性缺陷的菌株(从P(A)起始)的转录水平比TetR阳性菌株高60倍。tetA的高转录导致包含Tet模块的结构域的γδ分辨率效率降低10至80倍。用编码胞质蛋白LacZ和Kan的基因取代tetA,也会在染色体的特定区域出现超螺旋扩散屏障。在含有紧邻受调控的lacZ报告基因(P(R)tetR - P(A)lacZ)的功能性TetR的菌株中,用金霉素诱导转录会导致测试结构域区间的分辨率效率下降5倍。半衰期较短的解离酶表明,屏障在10至20分钟内出现和消失。这些研究证明了转录在染色体结构中的重要性以及细菌染色体中超螺旋结构域的可塑性。