Modulating Oral Microbiota to Prevent Dental Caries: A Microbial Ecology Approach
Abstract
1. Introduction
2. Materials and Methods
2.1. Review Design
2.2. Literature Search Strategy
2.3. Eligibility Criteria
2.4. Data Extraction and Synthesis
3. Cariogenic Microbiota and Ecological Shifts
3.1. Cariogenic Microbiota
3.2. Acidogenic and Aciduric Adaptation
4. Mechanisms Driving Caries Progression
4.1. EPS Production and Biofilm Architecture
4.2. Suppression of Alkali-Producing Species
4.3. Quorum Sensing and Biofilm Resilience
4.4. Synergistic Interactions and Acid Tolerance
5. Microbiota-Based Prevention Strategies
5.1. Dietary Modulation
5.1.1. Reducing Fermentable Carbohydrates
5.1.2. Functional Dietary Agents
5.2. Oral Hygiene Practices
5.3. Probiotics and Prebiotics
5.3.1. Probiotics
5.3.2. Prebiotics
5.3.3. Synbiotics
5.4. Current Evidence and Clinical Considerations
6. Diagnostic and Predictive Tools
6.1. Salivary Microbiome Profiling
6.2. Metabolomic and pH Biomarkers
6.3. AI and Predictive Modeling
7. Future Perspectives
7.1. Personalized Microbiota-Driven Prevention
7.2. Smart and Responsive Materials
8. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| EPS | exopolysaccharide |
| QS | quorum sensing |
References
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| Bacterial Species | Characteristics | Pathogenic Role | References |
|---|---|---|---|
| Streptococcus mutans | Acidogenic, aciduric, produces EPSs 1 | Initiates caries, forms robust biofilm structure | [15,17,18] |
| Lactobacillus spp. | Highly acidogenic and aciduric | Associated with lesion progression, especially in dentin | [19,20] |
| Scardovia wiggsiae | Emerging pathogen, strong acid tolerance | Linked to early childhood caries | [19,21] |
| Bifidobacterium dentium | Produces lactate and acetate | Implicated in root caries | [15,22] |
| Veillonella spp. | Utilizes lactic acid from others | Supports acid production via metabolic cross-feeding | [15,23] |
| Agent/Intervention | Category | Mechanism of Action | Current Evidence | Major Limitation | References |
|---|---|---|---|---|---|
| Xylitol | Dietary polyol | Inhibits Streptococcus mutans adhesion, reduces acid production | Moderate–strong | Compliance dependent | [55,59,60] |
| Arginine | Prebiotic | Promotes alkali production, stabilizes plaque pH | Moderate | Limited long-term RCTs 3 | [43,44,61,62] |
| Polyphenols (e.g., tea, cranberry) | Dietary phytochemicals | Inhibit EPS synthesis, downregulate virulence factors 1 | Mainly/preclinical | Lack of standardized formulations | [56,63,64] |
| Fluoride | Topical agent | Enhances remineralization, suppresses acidogenicity | Strong | Does not directly restore microbial ecology | [46,56,63,64,65] |
| Probiotics (L. rhamnosus, S. salivarius) | Microbiota-based | Reduce Streptococcus mutans colonization, shift microbiota composition | Moderate/heterogeneous results | Strain-specific/inconsistent colonization | [66,67,68,69,70,71] |
| Synbiotics | Microbiota-based | Combined probiotic–prebiotic effects | Emerging | Few large multicenter trials | [68,72,73] |
| CPC 2 | Antiseptic | Targets Streptococcus mutans while preserving commensals | Moderate | Possible short-term microbiota perturbation | [65,74] |
| Enzyme-based/nano-silver gels | Emerging hygiene | Selectively inhibit cariogenic species without disrupting microbiota | Experimental/ preclinical | Cost and limited clinical evidence | [75,76,77,78,79] |
| Tool/Method | Principle | Clinical Utility | References |
|---|---|---|---|
| Salivary microbiome profiling | NGS to identify microbial Composition 1 | Detects at-risk microbiota patterns | [97,98,99,100,101,102,103] |
| pH sensing technologies | Real-time biofilm acidity monitoring | Assesses acidogenic potential after sugar exposure | [23,104,105,106] |
| VOC analysis 2 (e.g., lactic acid) | Measures metabolic by-products | Indicates active cariogenic activity | [99,107] |
| Salivary buffering tests | Quantifies neutralizing capacity | Evaluates host defense against acid challenges | [104,106] |
| AI-based predictive Modeling 3 | Combines biological and behavioral data | Enables personalized prevention and population screening | [108,109,110,111,112,113] |
| Microfluidic/colorimetric devices | Portable diagnostic platforms | Supports chairside or public-health use | [111,112] |
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Lee, Y.-C.; Cheng, Y.-C.; Kung, C.-M.; Huang, C.-J. Modulating Oral Microbiota to Prevent Dental Caries: A Microbial Ecology Approach. Dent. J. 2026, 14, 477. https://doi.org/10.3390/dj14080477
Lee Y-C, Cheng Y-C, Kung C-M, Huang C-J. Modulating Oral Microbiota to Prevent Dental Caries: A Microbial Ecology Approach. Dentistry Journal. 2026; 14(8):477. https://doi.org/10.3390/dj14080477
Chicago/Turabian StyleLee, Yu-Chen, Yu-Che Cheng, Chun-Ming Kung, and Chi-Jung Huang. 2026. "Modulating Oral Microbiota to Prevent Dental Caries: A Microbial Ecology Approach" Dentistry Journal 14, no. 8: 477. https://doi.org/10.3390/dj14080477
APA StyleLee, Y.-C., Cheng, Y.-C., Kung, C.-M., & Huang, C.-J. (2026). Modulating Oral Microbiota to Prevent Dental Caries: A Microbial Ecology Approach. Dentistry Journal, 14(8), 477. https://doi.org/10.3390/dj14080477

