Centro de Investigaciones Biológicas, CSIC, Madrid, Spain.
J Bacteriol. 2013 Jul;195(13):3000-8. doi: 10.1128/JB.02264-12. Epub 2013 Apr 26.
A crucial element in the horizontal transfer of mobilizable and conjugative plasmids is the relaxase, a single-stranded endonuclease that nicks the origin of transfer (oriT) of the plasmid DNA. The relaxase of the pMV158 mobilizable plasmid is MobM (494 residues). In solution, MobM forms a dimer through its C-terminal domain, which is proposed to anchor the protein to the cell membrane and to participate in type 4 secretion system (T4SS) protein-protein interactions. In order to gain a deeper insight into the structural MobM requirements for efficient DNA catalysis, we studied two endonuclease domain variants that include the first 199 or 243 amino acid residues (MobMN199 and MobMN243, respectively). Our results confirmed that the two proteins behaved as monomers in solution. Interestingly, MobMN243 relaxed supercoiled DNA and cleaved single-stranded oligonucleotides harboring oriTpMV158, whereas MobMN199 was active only on supercoiled DNA. Protein stability studies using gel electrophoresis and mass spectrometry showed increased susceptibility to degradation at the domain boundary between the N- and C-terminal domains, suggesting that the domains change their relative orientation upon DNA binding. Overall, these results demonstrate that MobMN243 is capable of nicking the DNA substrate independently of its topology and that the amino acids 200 to 243 modulate substrate specificity but not the nicking activity per se. These findings suggest that these amino acids are involved in positioning the DNA for the nuclease reaction rather than in the nicking mechanism itself.
可移动和可接合质粒水平转移的一个关键要素是解旋酶,它是一种单链内切核酸酶,可在质粒 DNA 的转移起点 (oriT) 处切开。pMV158 可移动质粒的解旋酶是 MobM(494 个残基)。在溶液中,MobM 通过其 C 端结构域形成二聚体,该结构域被提议锚定蛋白质到细胞膜并参与 IV 型分泌系统 (T4SS) 蛋白质-蛋白质相互作用。为了更深入地了解结构 MobM 对有效 DNA 催化的要求,我们研究了两种内切酶结构域变体,包括前 199 或 243 个氨基酸残基(分别为 MobMN199 和 MobMN243)。我们的结果证实,这两种蛋白质在溶液中均表现为单体。有趣的是,MobMN243 松弛超螺旋 DNA 并切割含有 oriTpMV158 的单链寡核苷酸,而 MobMN199 仅在超螺旋 DNA 上具有活性。使用凝胶电泳和质谱法进行的蛋白质稳定性研究表明,在 N 端和 C 端结构域之间的结构域边界处对降解的敏感性增加,这表明在 DNA 结合时结构域改变其相对取向。总体而言,这些结果表明,MobMN243 能够独立于其拓扑结构切割 DNA 底物,并且氨基酸 200 至 243 调节底物特异性,但不调节本身的切口活性。这些发现表明,这些氨基酸参与为核酸酶反应定位 DNA,而不是参与切口机制本身。