Gingivitis Pathogenesis Involves Upregulation of Glycolysis and Citric Acid Cycle Activity Mediated by Bacterial Virulence Factors
Abstract
1. Introduction
2. Results
2.1. Clinical Observations, Microbial Composition and Virulence Assessments from Original Study: Effects of Four Weeks of SnF2 Dentifrice Use
2.2. Metabolomic Analysis of Oral Lavage (Metabolon Analysis): Baseline Comparisons Between Unhealthy and Healthy Gingiva Groups
2.3. Changes in Metabolite Levels in Oral Lavage: Effects of Four Weeks of SnF2 Dentifrice Use
2.4. Biomarker 40-Plex: Baseline Comparisons Between Unhealthy and Healthy Gingiva Groups
2.5. Proteomic Analysis of Oral Lavage Using Aptamer-Based Reagents: Baseline Comparisons Between Unhealthy and Healthy Gingiva Groups
2.6. Enzymatic Activities: Baseline Comparisons Between Unhealthy and Healthy Gingiva Groups
Enzymatic Activities: Effects of Four Weeks of SnF2 Dentifrice Use
2.7. TLR-ATP Biosensor—Bacterial Structure Component Activation
3. Discussion
4. Materials and Methods
4.1. Clinical Study Background
4.2. Oral Lavage Samples
4.3. Metabolomic Analysis
4.4. Cytokine Analysis via Biomarker 40-Plex
4.5. Proteomic Analysis
4.6. Enzymatic Assays
4.7. Cell Line Construction and Assay Development for TLR-ATP Biosensor
4.8. Experiments with TLR-ATP Biosensor Including Effects of Various Virulence Factors and Inhibition by SnF2
4.9. Statistical Analyses
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Xie, S.; Klukowska, M.; Wang, J.; Huggins, T.; Ashe, J.; Tansky, C.S.; Li, L.; Circello, B.; Ramji, N.; White, D.J.; et al. Gingivitis Pathogenesis Involves Upregulation of Glycolysis and Citric Acid Cycle Activity Mediated by Bacterial Virulence Factors. Int. J. Mol. Sci. 2026, 27, 5316. https://doi.org/10.3390/ijms27125316
Xie S, Klukowska M, Wang J, Huggins T, Ashe J, Tansky CS, Li L, Circello B, Ramji N, White DJ, et al. Gingivitis Pathogenesis Involves Upregulation of Glycolysis and Citric Acid Cycle Activity Mediated by Bacterial Virulence Factors. International Journal of Molecular Sciences. 2026; 27(12):5316. https://doi.org/10.3390/ijms27125316
Chicago/Turabian StyleXie, Sancai, Malgorzata Klukowska, Jiazhen Wang, Tom Huggins, Julie Ashe, Cheryl S. Tansky, Lijuan Li, Benjamin Circello, Niranjan Ramji, Donald J. White, and et al. 2026. "Gingivitis Pathogenesis Involves Upregulation of Glycolysis and Citric Acid Cycle Activity Mediated by Bacterial Virulence Factors" International Journal of Molecular Sciences 27, no. 12: 5316. https://doi.org/10.3390/ijms27125316
APA StyleXie, S., Klukowska, M., Wang, J., Huggins, T., Ashe, J., Tansky, C. S., Li, L., Circello, B., Ramji, N., White, D. J., & Biesbrock, A. R. (2026). Gingivitis Pathogenesis Involves Upregulation of Glycolysis and Citric Acid Cycle Activity Mediated by Bacterial Virulence Factors. International Journal of Molecular Sciences, 27(12), 5316. https://doi.org/10.3390/ijms27125316

