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The aims of the present study were to investigate last dental visit as a mediator in the relationship between socioeconomic status and lack of functional dentition/severe tooth loss and use a machine learning approach to predict those adults and elderly at higher risk of tooth loss. We analyzed data from a representative sample of 88,531 Brazilian individuals aged 18 and over. Tooth loss was the outcome by; (1) functional dentition and (2) severe tooth loss. Structural Equation models were used to find the time of last dental visit associated with the outcomes. Moreover, machine learning was used to train and test predictions to target individuals at higher risk for tooth loss. For 65,803 adults, more than two years of last dental visit was associated with lack of functional dentition. Age was the main contributor in the machine learning approach, with an AUC of 90%, accuracy of 90%, specificity of 97% and sensitivity of 38%. For elders, the last dental visit was associated with higher severe loss. Conclusions. More than two years of last dental visit appears to be associated with a severe loss and lack of functional dentition. The machine learning approach had a good performance to predict those individuals.
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http://dx.doi.org/10.1186/s13104-023-06632-4 | DOI Listing |
Cureus
August 2025
Restorative Dentistry, Prince Abdulrahman Advanced Dental Institute, Riyadh, SAU.
This study aimed to identify the prevalence of dental caries in children and the impact of associated risk factors. This cross-sectional study was performed on children attending the dental clinic at King Fahad Armed Forces Hospital in Jeddah, Saudi Arabia. The American Academy of Pediatric Dentistry criteria were used for the diagnosis of early childhood caries.
View Article and Find Full Text PDFSpec Care Dentist
September 2025
Department of Health Services Research and Administration, University of Nebraska Medical Center, Omaha, Nebraska, USA.
Aim: To examine the association of family-centered care (FCC) with oral health indicators among children with special health care needs (CSHCN).
Methods: Data includes the CSHCN population from the 2017 to 2019 National Survey of Children's Health (NSCH). Four parent- and caregiver-reported binary oral health outcomes were assessed: preventive dental visits (PDVs), cavities, condition of teeth, and oral health problems.
Bone
September 2025
Department of Anesthesiology, Critical Care and Pain Medicine, Boston Children's Hospital, Harvard Medical School, Boston, MA, USA; Department of Psychiatry, McLean Hospital, Harvard Medical School, Belmont, MA, USA. Electronic address:
Pain in Fibrous dysplasia/McCune-Albright syndrome (FD/MAS) remains poorly understood and inadequately managed due to uncertainties regarding clinical or biological drivers. This cross-sectional pilot study aimed to use plasma proteomics to identify markers that inform on molecular pathways associated with pain and emotional symptoms in FD/MAS. Seventeen individuals (15 females, 2 males), aged 16 to 63 years, with confirmed diagnoses of monostotic FD, polyostotic FD, or MAS participated in a single study visit conducted at Boston Children's Hospital and Massachusetts General Brigham.
View Article and Find Full Text PDFPrev Chronic Dis
September 2025
Division of Epidemiology, Department of Internal Medicine, University of Utah, Salt Lake City.
Introduction: Subjective cognitive decline (SCD) may be associated with poor oral health because of difficulty with self-care or comorbid conditions. Our study aimed to examine oral health status, use of dental services, and the prevalence of SCD among US middle-aged (45-64 y) and older (≥65 y) adults.
Methods: We conducted a cross-sectional analysis of 2022 Behavioral Risk Factor Surveillance System (BRFSS) data.
Stomatologiia (Mosk)
September 2025
Central Scientific Research Institute of Healthcare Organization and Informatization, Moscow, Russia.
Objective: To study the frequency of visits to dental surgeons in different subjects of the Russian Federation.
Material And Methods: The work used the data of sectoral statistical observation for 2017-2023 presented in the statistical compilations of the Ministry of Health of Russia on resource provision in federal districts and subjects of the Russian Federation for 2018, 2020, 2022 and 2024. Statistical and analytical methods of research were used in the work.