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Identification of Anion Channels Responsible for Fluoride Resistance in Oral Streptococci
Xiaochen Men1, Yukie Shibata1, Toru Takeshita1
1Section of Preventive and Public Health Dentistry, Division of Oral Health, Growth and Development, Faculty of Dental Science, Kyushu University, Fukuoka, Japan.
Abstract:
Recently, it has been reported that eriC and crcB are involved in bacterial fluoride resistance. However, the fluoride-resistance mechanism in oral streptococci remains unclear. BLAST studies showed that two types of eriCs (eriC1 and eriC2) and two types of crcBs (crcB1 and crcB2) are present across 18 oral streptococci, which were identified in ≥ 10% of 166 orally healthy subjects with ≥ 0.01% of the mean relative abundance. They were divided into three groups based on the distribution of these four genes: group I, only eriC1; group II, eriC1 and eriC2; and group III, eriC2, crcB1, and crcB2. Group I consisted of Streptococcus mutans, in which one of the two eriC1s predominantly affected fluoride resistance. Group II consisted of eight species, and eriC1 was responsible for fluoride resistance, but eriC2 was not, in Streptococcus anginosus as a representative species. Group III consisted of nine species, and both crcB1 and crcB2 were crucial for fluoride resistance, but eriC2 was not, in Streptococcus sanguinis as a representative species. Based on these results, either EriC1 or CrcBs play a role in fluoride resistance in oral streptococci. Complementation between S. mutans EriC1 and S. sanguinis CrcB1/CrcB2 was confirmed in both S. mutans and S. sanguinis. However, neither transfer of S. sanguinis CrcB1/CrcB2 into wild-type S. mutans nor S. mutans EriC1 into wild-type S. sanguinis increased the fluoride resistance of the wild-type strain. Co-existence of different F- channels (EriC and CrcB) did not cause the additive effect on fluoride resistance in oral Streptococcus species.
Insights
Oral streptococci utilize either EriC1 or CrcB proteins for fluoride resistance, with specific gene combinations determining effectiveness. Different fluoride channel proteins do not enhance resistance when co-existing.
Area of Science:
- Microbiology
- Molecular Biology
- Oral Health
Background:
- Bacterial fluoride resistance is crucial for oral health.
- The roles of eriC and crcB genes in this mechanism are known but not fully elucidated in oral streptococci.
Purpose of the Study:
- To investigate the specific roles of eriC and crcB gene variants in fluoride resistance across various oral streptococci species.
- To understand the distribution and functional significance of these genes in different oral streptococcal groups.
Main Methods:
- Bioinformatic analysis (BLAST) to identify eriC and crcB variants in oral streptococci.
- Categorization of 18 oral streptococci species into three groups based on gene distribution.
- Functional analysis using representative species (Streptococcus mutans, Streptococcus anginosus, Streptococcus sanguinis) to assess the contribution of specific genes to fluoride resistance.
Main Results:
- Two eriC types (eriC1, eriC2) and two crcB types (crcB1, crcB2) were identified in oral streptococci.
- Group I (e.g., S. mutans) relied on eriC1; Group II (e.g., S. anginosus) relied on eriC1; Group III (e.g., S. sanguinis) relied on crcB1 and crcB2.
- Complementation studies showed functional overlap but no additive resistance effect from co-existing fluoride channels.
Conclusions:
- Fluoride resistance in oral streptococci is mediated by either EriC1 or CrcB proteins, depending on the species' genetic makeup.
- The presence of multiple fluoride channel types does not lead to increased resistance in oral streptococci.
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