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牙周韧带附着点及其在牙槽关节功能中的适应性作用。

Periodontal ligament entheses and their adaptive role in the context of dentoalveolar joint function.

作者信息

Lin Jeremy D, Jang Andrew T, Kurylo Michael P, Hurng Jonathan, Yang Feifei, Yang Lynn, Pal Arvin, Chen Ling, Ho Sunita P

机构信息

Division of Biomaterials and Bioengineering, Department of Preventive and Restorative Dental Sciences, University of California San Francisco, San Francisco, CA 94143, United States.

South of Market Health Center, San Francisco, CA 94103, United States.

出版信息

Dent Mater. 2017 Jun;33(6):650-666. doi: 10.1016/j.dental.2017.03.007. Epub 2017 May 2.

Abstract

OBJECTIVE

The dynamic bone-periodontal ligament (PDL)-tooth fibrous joint consists of two adaptive functionally graded interfaces (FGI), the PDL-bone and PDL-cementum that respond to mechanical strain transmitted during mastication. In general, from a materials and mechanics perspective, FGI prevent catastrophic failure during prolonged cyclic loading. This review is a discourse of results gathered from literature to illustrate the dynamic adaptive nature of the fibrous joint in response to physiologic and pathologic simulated functions, and experimental tooth movement.

METHODS

Historically, studies have investigated soft to hard tissue transitions through analytical techniques that provided insights into structural, biochemical, and mechanical characterization methods. Experimental approaches included two dimensional to three dimensional advanced in situ imaging and analytical techniques. These techniques allowed mapping and correlation of deformations to physicochemical and mechanobiological changes within volumes of the complex subjected to concentric and eccentric loading regimes respectively.

RESULTS

Tooth movement is facilitated by mechanobiological activity at the interfaces of the fibrous joint and generates elastic discontinuities at these interfaces in response to eccentric loading. Both concentric and eccentric loads mediated cellular responses to strains, and prompted self-regulating mineral forming and resorbing zones that in turn altered the functional space of the joint.

SIGNIFICANCE

A multiscale biomechanics and mechanobiology approach is important for correlating joint function to tissue-level strain-adaptive properties with overall effects on joint form as related to physiologic and pathologic functions. Elucidating the shift in localization of biomolecules specifically at interfaces during development, function, and therapeutic loading of the joint is critical for developing "functional regeneration and adaptation" strategies with an emphasis on restoring physiologic joint function.

摘要

目的

动态骨 - 牙周韧带(PDL)- 牙齿纤维关节由两个适应性功能梯度界面(FGI)组成,即PDL - 骨界面和PDL - 牙骨质界面,它们对咀嚼过程中传递的机械应变作出反应。一般来说,从材料和力学角度看,功能梯度界面可防止在长期循环加载过程中发生灾难性失效。本综述旨在探讨从文献中收集的结果,以阐明纤维关节在响应生理和病理模拟功能以及实验性牙齿移动时的动态适应性本质。

方法

从历史上看,研究通过分析技术研究了软组织到硬组织的转变,这些技术为结构、生化和力学表征方法提供了见解。实验方法包括从二维到三维的先进原位成像和分析技术。这些技术分别允许将变形映射并关联到在同心和偏心加载条件下复杂物体体积内的物理化学和力学生物学变化。

结果

纤维关节界面处的力学生物学活动促进了牙齿移动,并在响应偏心加载时在这些界面处产生弹性不连续性。同心和偏心载荷均介导细胞对应变的反应,并促使形成自我调节的矿化和吸收区域,进而改变关节的功能空间。

意义

多尺度生物力学和力学生物学方法对于将关节功能与组织水平的应变适应性特性相关联,并对与生理和病理功能相关的关节形态产生整体影响至关重要。阐明生物分子在关节发育、功能和治疗加载过程中在特定界面处的定位变化,对于制定强调恢复生理关节功能的“功能再生和适应”策略至关重要。

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