外源性胶原交联非常不利于关节软骨润滑。

IF 1.7 4区 医学 Q4 BIOPHYSICS
Meghan E Kupratis, Uriel Gonzalez, Atia Rahman, David L Burris, Elise A Corbin, Christopher Price
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引用次数: 0

摘要

健康的关节软骨是一种非凡的承载材料,可实现近乎无摩擦的关节连接。由于软骨的自我修复能力有限,很容易发生骨关节炎,因此加固或重建退行性软骨的方法备受关注。虽然外源性胶原交联(CXL)疗法能改善软骨的机械性能并防止其易受酶降解的影响,但其对软骨润滑的影响仍不太明确。在这里,我们使用聚合静止接触区(cSCA)构型研究了胶原交联剂吉尼平(GP)和戊二醛(GTA)对软骨润滑的影响。与传统配置不同,cSCA 通过间隙和流体动力加压(即摩擦再水化)的叠加来维持生物保真动摩擦系数 (µk)。正如预期的那样,戊二醛和基因素介导的 CXL 增加了软骨的拉伸和压缩模量。虽然在 CXL 之后仍保留了净摩擦再水化作用,但 GP 或 GTA 处理会大幅提高 µk。在生理盐水(=0.02)和滑膜液润滑接触(=0.006)中,健康软骨和 "类 OA "软骨(通过酶消化产生)的 µk 值都非常低。CXL 后,µk 增加了 30 倍,达到了与体外软骨细胞明显死亡相关的值。这些结果表明,机械性能(即硬度)是衡量软骨功能的必要指标,但不是充分指标。此外,润滑功能的明显受损表明,CXL 介导的僵化并不适合软骨保护或关节重置。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exogenous Collagen Crosslinking is Highly Detrimental to Articular Cartilage Lubrication.

Healthy articular cartilage is a remarkable bearing material optimized for near-frictionless joint articulation. Because its limited self-repair capacity renders it susceptible to osteoarthritis (OA), approaches to reinforce or rebuild degenerative cartilage are of significant interest. While exogenous collagen crosslinking (CXL) treatments improve cartilage's mechanical properties and increase its resistance to enzymatic degradation, their effects on cartilage lubrication remain less clear. Here, we examined how the collagen crosslinking agents genipin (GP) and glutaraldehyde (GTA) impact cartilage lubrication using the convergent stationary contact area (cSCA) configuration. Unlike classical configurations, the cSCA sustains biofidelic kinetic friction coefficients (μk) via superposition of interstitial and hydrodynamic pressurization (i.e., tribological rehydration). As expected, glutaraldehyde- and genipin-mediated CXL increased cartilage's tensile and compressive moduli. Although net tribological rehydration was retained after CXL, GP or GTA treatment drastically elevated μk. Both healthy and "OA-like" cartilage (generated via enzymatic digestion) sustained remarkably low μk in saline- (≤0.02) and synovial fluid-lubricated contacts (≤0.006). After CXL, μk increased up to 30-fold, reaching values associated with marked chondrocyte death in vitro. These results demonstrate that mechanical properties (i.e., stiffness) are necessary, but not sufficient, metrics of cartilage function. Furthermore, the marked impairment in lubrication suggests that CXL-mediated stiffening is ill-suited to cartilage preservation or joint resurfacing.

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来源期刊
CiteScore
3.40
自引率
5.90%
发文量
169
审稿时长
4-8 weeks
期刊介绍: Artificial Organs and Prostheses; Bioinstrumentation and Measurements; Bioheat Transfer; Biomaterials; Biomechanics; Bioprocess Engineering; Cellular Mechanics; Design and Control of Biological Systems; Physiological Systems.
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