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振动光谱学在正畸牙齿移动过程中龈沟液和牙周韧带定性分析中的应用。

Application of Vibrational Spectroscopies in the Qualitative Analysis of Gingival Crevicular Fluid and Periodontal Ligament during Orthodontic Tooth Movement.

作者信息

d'Apuzzo Fabrizia, Nucci Ludovica, Delfino Ines, Portaccio Marianna, Minervini Giuseppe, Isola Gaetano, Serino Ismene, Camerlingo Carlo, Lepore Maria

机构信息

Multidisciplinary Department of Medical-Surgical and Dental Specialties, University of Campania Luigi Vanvitelli, 80138 Napoli, Italy.

Department of Ecological and Biological Sciences, University of Tuscia, 01100 Viterbo, Italy.

出版信息

J Clin Med. 2021 Apr 1;10(7):1405. doi: 10.3390/jcm10071405.

Abstract

Optical vibrational techniques show a high potentiality in many biomedical fields for their characteristics of high sensitivity in revealing detailed information on composition, structure, and molecular interaction with reduced analysis time. In the last years, we have used these techniques for investigating gingival crevicular fluid (GCF) and periodontal ligament (PDL) during orthodontic tooth treatment. The analysis with Raman and infrared signals of GCF and PDL samples highlighted that different days of orthodontic force application causes modifications in the molecular secondary structure at specific wavenumbers related to the Amide I, Amide III, CH deformation, and CH/CH. In the present review, we report the most relevant results and a brief description of the experimental techniques and data analysis procedure in order to evidence that the vibrational spectroscopies could be a potential useful tool for an immediate monitoring of the individual patient's response to the orthodontic tooth movement, aiming to more personalized treatment reducing any side effects.

摘要

光学振动技术因其在揭示成分、结构以及分子相互作用的详细信息方面具有高灵敏度的特点,且分析时间缩短,在许多生物医学领域显示出很高的潜力。在过去几年中,我们利用这些技术在正畸牙齿治疗期间研究龈沟液(GCF)和牙周韧带(PDL)。对GCF和PDL样本的拉曼和红外信号分析突出表明,正畸力施加的不同天数会导致在与酰胺I、酰胺III、CH变形和CH/CH相关的特定波数处分子二级结构发生改变。在本综述中,我们报告了最相关的结果,并简要描述了实验技术和数据分析程序,以证明振动光谱学可能是一种潜在有用的工具,可用于即时监测个体患者对正畸牙齿移动的反应,旨在实现更个性化的治疗并减少任何副作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b5c/8036342/5b2e639d67e2/jcm-10-01405-g001.jpg

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