Literature DB >> 21659012

Bone metabolism of residual ridge beneath the denture base of an RPD observed using NaF-PET/CT.

Hanako Suenaga1, Masayoshi Yokoyama, Keiichiro Yamaguchi, Keiichi Sasaki.   

Abstract

PATIENT: A 66-year-old woman, who had a bilateral free-end edentulous mandible and no experience with dentures, was examined for the chief complaint of masticatory dysfunction on left side of dental arch. A unilateral distal extension removable partial denture (RPD) replacing lower-left molars was selected. Tomographic images were obtained using Fluorine-18 NaF positron emission computerized tomography (NaF-PET)/computed tomography (CT) before the RPD use and at 1, 6, and 13 weeks after the RPD use to observe the metabolic changes in residual bone caused by the RPD use. PET standardized uptake values (SUVs) and CT values were calculated for lower-left edentulous site (test side) and lower-right edentulous site (control side). As a result, SUVs on the control side remained static after the RPD use, whereas those on the test side increased at 1 and 6 weeks after the RPD use and then decreased. However, CT images showed no obvious changes in the bone shape and structure beneath RPD, and CT values both on the control and test sides did not change either. DISCUSSION: This report shows that NaF-PET could detect bone metabolic changes soon after the RPD use, which cannot be detected by clinical X-rays. The SUV changes may be a mechanobiological reaction to the pressure due to the RPD use, and wearing of the RPD may increase the bone turnover beneath denture.
CONCLUSION: This report demonstrates that wearing of an RPD increases bone turnover beneath denture immediately after the RPD use without clinically detectable changes in bone structure or volume.
Copyright © 2011 Japan Prosthodontic Society. Published by Elsevier Ltd. All rights reserved.

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Year:  2011        PMID: 21659012     DOI: 10.1016/j.jpor.2011.04.002

Source DB:  PubMed          Journal:  J Prosthodont Res        ISSN: 1883-1958            Impact factor:   4.642


  9 in total

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Journal:  Bone       Date:  2020-04-08       Impact factor: 4.398

3.  Na18F accumulates on the compressive side of peri-implant bone under immediate loading.

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Journal:  Odontology       Date:  2017-12-13       Impact factor: 2.634

4.  Synthesis and Characterization of a Ring-Opening Oxaspiro Comonomer by a Novel Catalytic Method for Denture Base Resins.

Authors:  Ranganathan Ajay; Vikraman Rakshagan; Rajamani Ganeshkumar; Elumalai Ambedkar; Shafiullah RahmathShameem; Kanagesan Praveena
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5.  Normal SUV values measured from NaF18- PET/CT bone scan studies.

Authors:  Aung Zaw Win; Carina Mari Aparici
Journal:  PLoS One       Date:  2014-09-25       Impact factor: 3.240

6.  Does Low-Magnitude High-Frequency Vibration (LMHFV) Worth for Clinical Trial on Dental Implant? A Systematic Review and Meta-Analysis on Animal Studies.

Authors:  Xinjian Ye; Ying Gu; Yijing Bai; Siqi Xia; Yujia Zhang; Yuwei Lou; Yuchi Zhu; Yuwei Dai; James Kit-Hon Tsoi; Shuhua Wang
Journal:  Front Bioeng Biotechnol       Date:  2021-04-27

7.  Time course of bone metabolism at the residual ridge beneath dentures observed using ¹⁸F-fluoride positron emission computerized-tomography/computed tomography (PET/CT).

Authors:  Hanako Suenaga; Masayoshi Yokoyama; Keiichiro Yamaguchi; Keiichi Sasaki
Journal:  Ann Nucl Med       Date:  2012-08-18       Impact factor: 2.668

Review 8.  Biomechanics of oral mucosa.

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9.  Factors Affecting Uptake of NaF-18 by the Normal Skeleton.

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  9 in total

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