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Periodontitis is a widespread chronic inflammatory disease caused by interactions between periodontal bacteria and homeostasis in the host. We aimed to investigate the performance and reliability of machine learning models in predicting the severity of chronic periodontitis. Mouthwash samples from 692 subjects (144 healthy controls and 548 generalized chronic periodontitis patients) were collected, the genomic DNA was isolated, and the copy numbers of nine pathogens were measured using multiplex qPCR. The nine pathogens are as follows: (Pg), (Tf), (Td), (Pi), (Fn), (Cr), (Aa), (Pa), and (Ec). By adding the species one by one in order of high accuracy to find the optimal combination of input features, we developed an algorithm that predicts the severity of periodontitis using four machine learning techniques. The accuracy was the highest when the models classified "healthy" and "moderate or severe" periodontitis (H vs. M-S, average accuracy of four models: 0.93, AUC = 0.96, sensitivity of 0.96, specificity of 0.81, and diagnostic odds ratio = 112.75). One or two red complex pathogens were used in three models to distinguish slight chronic periodontitis patients from healthy controls (average accuracy of 0.78, AUC = 0.82, sensitivity of 0.71, and specificity of 0.84, diagnostic odds ratio = 12.85). Although the overall accuracy was slightly reduced, the models showed reliability in predicting the severity of chronic periodontitis from 45 newly obtained samples. Our results suggest that a well-designed combination of salivary bacteria can be used as a biomarker for classifying between a periodontally healthy group and a chronic periodontitis group.
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http://dx.doi.org/10.3389/fcimb.2020.571515 | DOI Listing |
J Oral Biol Craniofac Res
August 2025
Neura Integrasi Solusi, Jl. Kebun Raya No. 73, Rejowinangun, Kotagede, Yogyakarta, 55171, Indonesia.
Background: Periodontal disease is an inflammatory condition causing chronic damage to the tooth-supporting connective tissues, leading to tooth loss in adults. Diagnosing periodontitis requires clinical and radiographic examinations, with panoramic radiographs crucial in identifying and assessing its severity and staging. Convolutional Neural Networks (CNNs), a deep learning method for visual data analysis, and Dense Convolutional Networks (DenseNet), which utilize direct feed-forward connections between layers, enable high-performance computer vision tasks with reduced computational demands.
View Article and Find Full Text PDFJ Dent Res
September 2025
Beijing Laboratory of Oral Health, Capital Medical University School of Basic Medicine, Beijing, China.
Periodontitis, a pervasive chronic inflammatory disorder, is distinguished by the progressive degradation of periodontal tissues and alveolar bone. Despite remarkable progress in understanding the pathogenesis of periodontitis, the involvement of TCRαβCD4CD8 T cells, also known as double-negative T (DNT) cells, in the pathophysiology of this disease has not been thoroughly investigated. In this study, we observed a significant reduction in the frequency of TCRαβ DNT cells within the gingival tissues of patients afflicted with periodontitis when compared with healthy individuals.
View Article and Find Full Text PDFCancer Metastasis Rev
September 2025
Department of Periodontics and Oral Medicine, University of Michigan School of Dentistry, 1011 North University Ave, Room G018, Ann Arbor, MI, 48109-1078, USA.
Chronic inflammation and microbial dysbiosis have been implicated in the development of head and neck squamous cell carcinoma (HNSCC), particularly oral cavity squamous cell carcinoma (OSCC). Periodontitis is a common chronic inflammatory disease characterized by the progressive destruction of tooth-supporting structures. While periodontitis Has been associated with an increased risk of OSCC in epidemiological and mechanistic studies, the strength of this association is unclear.
View Article and Find Full Text PDFFASEB J
September 2025
Stomatology Hospital, School of Stomatology, Zhejiang University School of Medicine, Zhejiang Provincial Clinical Research Center for Oral Diseases, Key Laboratory of Oral Biomedical Research of Zhejiang Province, Cancer Center of Zhejiang University, Engineering Research Center of Oral Biomaterials
The onset and progression of periodontitis are closely related to metabolic reprogramming in the periodontal microenvironment, with osteoclasts playing a critical role in tissue destruction. Single-cell RNA sequencing (scRNA-seq) of periodontal tissues from healthy individuals and patients with severe chronic periodontitis revealed a significant increase in the expression of mitochondrial-related genes during osteoclast differentiation, suggesting the critical role of mitochondrial function in this process. This study investigates the potential of the novel mitoribosome-targeting antibiotic radezolid in inhibiting osteoclast differentiation.
View Article and Find Full Text PDFMedicine (Baltimore)
September 2025
Shaoxing People's Hospital, Shaoxing, Zhejiang Province, P.R. China.
Childhood obesity is an escalating global public health concern with potential long-term implications for various health outcomes, including oral health. While the association between childhood obesity and systemic diseases is well-documented, its specific impact on adult oral health remains underexplored. This study utilized a 2-sample Mendelian randomization approach to explore the causal relationship between childhood obesity and several adult oral health conditions, including gingivitis, chronic periodontitis, dental caries, temporomandibular joint disorder, and malocclusion.
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