Decoding Adenine DNA Methylation Effects in Streptococcus Mutans: Insights Into Self-DNA Protection and Autoaggregation.

IF 2.8 3区 医学 Q1 DENTISTRY, ORAL SURGERY & MEDICINE Molecular Oral Microbiology Pub Date : 2024-12-03 DOI:10.1111/omi.12489
Haowei Zhao, Delphine Dufour, Jamie Zhong, Siew-Ging Gong, Paul H Roy, Céline M Lévesque
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Abstract

Streptococcus mutans, a key player in dental caries, faces multiple environmental challenges within the oral cavity, including oxidative stress, nutrient scarcity, and acidic pH. To survive and thrive, S. mutans has evolved intricate mechanisms, including the CSP-ComDE quorum sensing system, which coordinates responses to environmental cues. The CSP-ComDE system enables S. mutans to communicate with neighboring cells via its CSP pheromone. Under stress conditions, the CSP pheromone production increases, triggering a cascade of events. Notably, our research demonstrated that the CSP pheromone activates the expression of a Type II restriction-modification (R-M) system. Type II R-M systems are well-known tools in molecular biology and genetic engineering and consist of two distinct enzymes: a restriction enzyme and a methyltransferase. An increasing number of studies have revealed that bacterial adenine methylation (Dam methylation) has a broader role beyond mere DNA protection. In fact, the marks introduced into the DNA provide signals for a variety of physiological processes. Our results highlight a conserved chromosomal locus in S. mutans encoding the DpnII R-M system. DpnII R-M methylates DNA at 5'-GATC target sites within the S. mutans genome and cleaves unmarked DNA. Furthermore, our findings suggest that Dam methylation significantly impacts foreign DNA acquisition via natural transformation and modulates mutanobactin expression-a secondary metabolite linked to oxidative stress tolerance. Collectively, our findings suggest that Dam methylation bridges epigenetics and bacterial fitness, potentially opening new avenues in bacterial epigenetics. As we explore this intricate biological process, we may uncover novel therapeutic strategies to combat bacterial infections.

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解码变形链球菌的腺嘌呤DNA甲基化效应:对自我DNA保护和自聚集的见解。
变形链球菌(Streptococcus mutans)是导致龋齿的关键因素,它在口腔内面临多种环境挑战,包括氧化应激、营养缺乏和酸性ph。为了生存和繁衍,变形链球菌进化出了复杂的机制,包括CSP-ComDE群体感应系统,该系统协调对环境信号的反应。CSP- comde系统使变形链球菌能够通过其CSP信息素与邻近细胞进行通信。在压力条件下,CSP信息素的产生增加,引发一系列事件。值得注意的是,我们的研究表明,CSP信息素激活了II型限制性修饰(R-M)系统的表达。II型R-M系统是分子生物学和基因工程中众所周知的工具,由两种不同的酶组成:限制性内切酶和甲基转移酶。越来越多的研究表明,细菌腺嘌呤甲基化(Dam甲基化)具有更广泛的作用,而不仅仅是DNA保护。事实上,引入DNA的标记为各种生理过程提供了信号。我们的研究结果突出了突变链球菌编码DpnII R-M系统的保守染色体位点。DpnII R-M甲基化S. mutans基因组中5'-GATC靶点上的DNA,并切割未标记的DNA。此外,我们的研究结果表明,Dam甲基化通过自然转化显著影响外源DNA的获取,并调节mutanobactin的表达——一种与氧化应激耐受性相关的次级代谢物。总的来说,我们的研究结果表明,Dam甲基化连接了表观遗传学和细菌适应性,可能为细菌表观遗传学开辟了新的途径。当我们探索这个复杂的生物学过程时,我们可能会发现新的治疗策略来对抗细菌感染。
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来源期刊
Molecular Oral Microbiology
Molecular Oral Microbiology DENTISTRY, ORAL SURGERY & MEDICINE-MICROBIOLOGY
CiteScore
6.50
自引率
5.40%
发文量
46
审稿时长
>12 weeks
期刊介绍: Molecular Oral Microbiology publishes high quality research papers and reviews on fundamental or applied molecular studies of microorganisms of the oral cavity and respiratory tract, host-microbe interactions, cellular microbiology, molecular ecology, and immunological studies of oral and respiratory tract infections. Papers describing work in virology, or in immunology unrelated to microbial colonization or infection, will not be acceptable. Studies of the prevalence of organisms or of antimicrobials agents also are not within the scope of the journal. The journal does not publish Short Communications or Letters to the Editor. Molecular Oral Microbiology is published bimonthly.
期刊最新文献
Role of CRISPR-Cas systems in periodontal disease pathogenesis and potential for periodontal therapy: A review. Salivary microbiome and biomarker characteristics of diabetics with periodontitis. Characterization of thioredoxin-thioredoxin reductase system in Filifactor alocis. Detection of Amyloid-β Peptides in Gingival Crevicular Fluid and Its Effect on Oral Pathogens. Decoding Adenine DNA Methylation Effects in Streptococcus Mutans: Insights Into Self-DNA Protection and Autoaggregation.
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