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大鼠牙周膜-牙骨质复合体中应变引导矿化

Strain-guided mineralization in the bone-PDL-cementum complex of a rat periodontium.

作者信息

Grandfield Kathryn, Herber Ralf Peter, Chen Ling, Djomehri Sabra, Tam Caleb, Lee Ji-Hyun, Brown Evan, Woolwine Wood R, Curtis Don, Ryder Mark, Schuck Jim, Webb Samuel, Landis William, Ho Sunita

机构信息

Divisions of Orthodontics, University of California San Francisco, San Francisco, CA.

Division of Periodontics, Department of Orofacial Sciences, University of California San Francisco, San Francisco, CA.

出版信息

Bone Rep. 2015 Dec 1;3:20-31. doi: 10.1016/j.bonr.2015.04.002.

Abstract

OBJECTIVE

The objective of this study was to investigate the effect of mechanical strain by mapping physicochemical properties at periodontal ligament (PDL)-bone and PDL-cementum attachment sites and within the tissues .

DESIGN

Accentuated mechanical strain was induced by applying a unidirectional force of 0.06N for 14 days on molars in a rat model. The associated changes in functional space between tooth and bone, mineral formation and resorbing events at the PDL-bone and PDL-cementum attachment sites were identified by using micro-X-ray computed tomography (micro-XCT), atomic force microscopy (AFM), dynamic histomorphometry, Raman microspectroscopy, AFM-based nanoindentation technique, and were correlated with histochemical stains specific to low and high molecular weight GAGs, including biglycan, and osteoclast distribution through tartrate-resistant acid phosphatase (TRAP) staining.

RESULTS

Unique chemical and mechanical qualities including heterogenous bony fingers with hygroscopic Sharpey's fibers contributing to a higher organic (amide III - 1240 cm) to inorganic (phosphate - 960 cm) ratio, with lower average elastic modulus of 8 GPa versus 12 GPa in unadapted regions were identified. Furthermore, an increased presence of elemental Zn in cement lines and mineralizing fronts of PDL-bone was observed. Adapted regions containing bony fingers exhibited woven bone-like architecture and these regions rich in biglycan (BGN) and bone sialoprotein (BSP) also contained high-molecular weight polysaccharides predominantly at the site of polarized bone growth.

CONCLUSIONS

From a fundamental science perspective the shift in local properties due to strain amplification at the soft-hard tissue attachment sites is governed by semiautonomous cellular events at the PDL-bone and PDL-cementum sites. Over time, these strain-mediated events can alter the physicochemical properties of tissues , and consequently the overall biomechanics of the bone-PDL-tooth complex. From a clinical perspective, the shifts in magnitude and duration of forces on the periodontal ligament can prompt a shift in physiologic mineral apposition in cementum and alveolar bone albeit of an adapted quality owing to the rapid mechanical translation of the tooth.

摘要

目的

本研究的目的是通过绘制牙周膜(PDL)-骨和PDL-牙骨质附着部位以及组织内的物理化学性质,来研究机械应变的影响。

设计

在大鼠模型的磨牙上施加0.06N的单向力14天,以诱导增强的机械应变。通过使用微X射线计算机断层扫描(micro-XCT)、原子力显微镜(AFM)、动态组织形态计量学、拉曼显微光谱、基于AFM的纳米压痕技术,确定牙齿与骨之间功能空间的相关变化、PDL-骨和PDL-牙骨质附着部位的矿物质形成和吸收事件,并将其与低分子量和高分子量糖胺聚糖(包括双糖链蛋白聚糖)特异性的组织化学染色以及通过抗酒石酸酸性磷酸酶(TRAP)染色的破骨细胞分布相关联。

结果

确定了独特的化学和机械特性,包括具有吸湿的沙比纤维的异质骨指,其导致有机(酰胺III - 1240 cm)与无机(磷酸盐 - 960 cm)的比例更高,适应区域的平均弹性模量较低,为8 GPa,而未适应区域为12 GPa。此外,观察到PDL-骨的牙骨质线和矿化前沿中元素锌的含量增加。含有骨指的适应区域呈现编织骨样结构,这些富含双糖链蛋白聚糖(BGN)和骨唾液蛋白(BSP)的区域在极化骨生长部位也主要含有高分子量多糖。

结论

从基础科学的角度来看,软硬组织附着部位因应变放大导致的局部性质变化受PDL-骨和PDL-牙骨质部位的半自主细胞事件控制。随着时间的推移,这些应变介导的事件会改变组织的物理化学性质,进而改变骨-PDL-牙齿复合体的整体生物力学。从临床角度来看,牙周膜上力的大小和持续时间的变化会促使牙骨质和牙槽骨中生理性矿物质沉积发生变化,尽管由于牙齿的快速机械移位,这种变化具有适应性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4927/5365210/e51c1a0036eb/fx1.jpg

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