Department of Microbiology, Monash University, Clayton, 3800, Victoria, Australia.
Department of Microbiology and Immunology, University of Melbourne at the Peter Doherty Institute for Infection and Immunity, Parkville, 3010, Victoria, Australia.
Sci Rep. 2017 Nov 23;7(1):16140. doi: 10.1038/s41598-017-15721-x.
The Helicobacter pylori phase variable gene modH, typified by gene HP1522 in strain 26695, encodes a N-adenosine type III DNA methyltransferase. Our previous studies identified multiple strain-specific modH variants (modH1 - modH19) and showed that phase variation of modH5 in H. pylori P12 influenced expression of motility-associated genes and outer membrane protein gene hopG. However, the ModH5 DNA recognition motif and the mechanism by which ModH5 controls gene expression were unknown. Here, using comparative single molecule real-time sequencing, we identify the DNA site methylated by ModH5 as 5'-GACC-3'. This motif is vastly underrepresented in H. pylori genomes, but overrepresented in a number of virulence genes, including motility-associated genes, and outer membrane protein genes. Motility and the number of flagella of H. pylori P12 wild-type were significantly higher than that of isogenic modH5 OFF or ΔmodH5 mutants, indicating that phase variable switching of modH5 expression plays a role in regulating H. pylori motility phenotypes. Using the flagellin A (flaA) gene as a model, we show that ModH5 modulates flaA promoter activity in a GACC methylation-dependent manner. These findings provide novel insights into the role of ModH5 in gene regulation and how it mediates epigenetic regulation of H. pylori motility.
幽门螺杆菌的可变性基因 modH,以菌株 26695 中的基因 HP1522 为代表,编码一种 N-腺嘌呤 III 型 DNA 甲基转移酶。我们之前的研究鉴定了多个菌株特异性 modH 变体(modH1 - modH19),并表明幽门螺杆菌 P12 中 modH5 的相变异会影响运动相关基因和外膜蛋白基因 hopG 的表达。然而,ModH5 的 DNA 识别基序以及 ModH5 控制基因表达的机制尚不清楚。在这里,我们使用比较单分子实时测序,确定了 ModH5 甲基化的 DNA 位点为 5'-GACC-3'。这个基序在幽门螺杆菌基因组中极为罕见,但在许多毒力基因中都有较多的表达,包括运动相关基因和外膜蛋白基因。幽门螺杆菌 P12 野生型的运动性和鞭毛数量明显高于同基因的 modH5 OFF 或 ΔmodH5 突变体,这表明 modH5 表达的相变异开关在调节幽门螺杆菌运动表型方面发挥了作用。我们以鞭毛蛋白 A (flaA) 基因为模型,表明 ModH5 以 GACC 甲基化依赖的方式调节 flaA 启动子活性。这些发现为 ModH5 在基因调控中的作用以及它如何介导幽门螺杆菌运动的表观遗传调控提供了新的见解。