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不同类型滑膜关节中软骨的表面粗糙度比较。

A surface roughness comparison of cartilage in different types of synovial joints.

作者信息

Smyth Patrick A, Rifkin Rebecca E, Jackson Robert L, Hanson R Reid

机构信息

Department of Mechanical Engineering, Auburn University, Auburn, AL 36849, USA.

出版信息

J Biomech Eng. 2012 Feb;134(2):021006. doi: 10.1115/1.4005934.

Abstract

The naturally occurring structure of articular cartilage has proven to be an effective means for the facilitation of motion and load support in equine and other animal joints. For this reason, cartilage has been extensively studied for many years. Although the roughness of cartilage has been determined from atomic force microscopy (AFM) and other methods in multiple studies, a comparison of roughness to joint function has not be completed. It is hypothesized that various joint types with different motions and regimes of lubrication have altered demands on the articular surface that may affect cartilage surface properties. Micro- and nanoscale stylus profilometry was performed on the carpal cartilage harvested from 16 equine forelimbs. Eighty cartilage surface samples taken from three different functioning joint types (radiocarpal, midcarpal, and carpometacarpal) were measured by a Veeco Dektak 150 Stylus Surface Profilometer. The average surface roughness measurements were statistically different for each joint. This indicates that the structure of cartilage is adapted to, or worn by, its operating environment. Knowledge of cartilage micro- and nanoscale roughness will assist the future development and design of treatments for intra- articular substances or surfaces to preserve joint integrity and reduce limitations or loss of joint performance.

摘要

关节软骨的天然结构已被证明是促进马和其他动物关节运动及负荷支撑的有效方式。因此,软骨已被广泛研究多年。尽管在多项研究中已通过原子力显微镜(AFM)及其他方法测定了软骨的粗糙度,但粗糙度与关节功能的比较尚未完成。据推测,具有不同运动和润滑机制的各种关节类型对关节表面有不同要求,这可能会影响软骨表面特性。对从16个马前肢采集的腕关节软骨进行了微米和纳米级触针轮廓测量。通过Veeco Dektak 150触针表面轮廓仪测量了从三种不同功能关节类型(桡腕关节、腕中关节和腕掌关节)采集的80个软骨表面样本。每个关节的平均表面粗糙度测量结果在统计学上存在差异。这表明软骨结构与其运行环境相适应或受其磨损。了解软骨的微米和纳米级粗糙度将有助于未来开发和设计用于关节内物质或表面的治疗方法,以保持关节完整性并减少关节性能的限制或丧失。

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