Department of Microbiology, Molecular Genetics and Immunology, University of Kansas Medical Center, Kansas City, Kansas, USA.
J Bacteriol. 2014 Jan;196(1):129-39. doi: 10.1128/JB.00960-13. Epub 2013 Oct 18.
Dental caries induced by Streptococcus mutans is one of the most prevalent chronic infectious diseases worldwide. The pathogenicity of S. mutans relies on the bacterium's ability to colonize tooth surfaces and survive a strongly acidic environment. We performed an ISS1 transposon mutagenesis to screen for acid-sensitive mutants of S. mutans and identified an SMU.746-SMU.747 gene cluster that is needed for aciduricity. SMU.746 and SMU.747 appear to be organized in an operon and encode a putative membrane-associated permease. SMU.746- and SMU.747-deficient mutants showed a reduced ability to grow in acidified medium. However, the short-term or long-term acid survival capacity and F1F0 ATPase activity remained unaffected in the mutants. Furthermore, deletion of both genes did not change cell membrane permeability and the oxidative and heat stress responses. Growth was severely affected even with slight acidification of the defined medium (pH 6.5). The ability of the mutant strain to acidify the defined medium during growth in the presence of glucose and sucrose was significantly reduced, although the glycolysis rate was only slightly affected. Surprisingly, deletion of the SMU.746-SMU.747 genes triggered increased biofilm formation in low-pH medium. The observed effects were more striking in a chemically defined medium. We speculate that the SMU.746-SMU.747 complex is responsible for amino acid transport, and we discuss its possible role in colonization and survival in the oral environment.
变形链球菌引起的龋齿是世界上最普遍的慢性传染病之一。变形链球菌的致病性依赖于细菌在牙齿表面定植和在强酸环境中存活的能力。我们进行了 ISS1 转座子诱变,以筛选变形链球菌的酸敏感突变体,并鉴定出一个需要耐酸性的 SMU.746-SMU.747 基因簇。SMU.746 和 SMU.747 似乎在操纵子中组织,并编码一种假定的膜相关渗透酶。SMU.746 和 SMU.747 缺陷突变体在酸化培养基中的生长能力降低。然而,突变体的短期或长期耐酸能力和 F1F0 ATP 酶活性不受影响。此外,缺失这两个基因不会改变细胞膜通透性和氧化应激及热应激反应。即使在定义培养基(pH 6.5)轻微酸化的情况下,生长也受到严重影响。突变菌株在有葡萄糖和蔗糖存在时生长过程中酸化定义培养基的能力显著降低,尽管糖酵解速率仅受到轻微影响。令人惊讶的是,SMU.746-SMU.747 基因的缺失导致在低 pH 培养基中形成更多的生物膜。在化学定义培养基中观察到的效果更为明显。我们推测 SMU.746-SMU.747 复合物负责氨基酸运输,我们讨论了它在定植和在口腔环境中生存中的可能作用。