基质金属蛋白酶加速骨关节炎的细胞外基质分解和破坏机械转导。

IF 9.6 1区 医学 Q1 ENGINEERING, BIOMEDICAL
Jule Nieuwstraten , Rosa Riester , Ulf Krister Hofmann , Farshid Guilak , Marina Danalache
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引用次数: 0

摘要

细胞周围基质(PCM)是一种特殊的、狭窄的基质,围绕着关节软骨中的每个软骨细胞,共同构成软骨-软骨的基本代谢和功能单位。PCM在介导软骨细胞功能所必需的生物力学和生化信号中起着至关重要的作用。骨关节炎(OA)是一种以软骨退化为特征的慢性关节疾病,PCM是最早的分解代谢降解位点之一,主要由基质金属蛋白酶(MMPs)驱动。本研究旨在探讨PCM降解与软骨细胞机械信号传导之间的功能关系,重点研究骨关节炎软骨中mmp驱动的机械转导变化。人软骨(N = 64)与MMP-2、MMP-3和MMP-7孵养,通过评估perlecan和VI型胶原蛋白来评估组织学上的结构变化。使用原子力显微镜(AFM)测量细胞弹性,并通过AFM单细胞压痕(500 nN)评估机械诱发的细胞内Ca2+瞬变。所有三种MMPs都对PCM结构产生了明显的分解代谢作用,对VI型胶原和perlecan以及生物力学性能有明显的影响(p < 0.001)。mmp驱动的PCM完整性改变显著降低了软骨响应机械刺激时的Ca2+瞬态(p < 0.001)。虽然TRPV4激活在完整的软骨中升高,但在健康和mmp处理的软骨中,PIEZO通道都参与了机械转导。在骨关节炎阶段,机械传导动力学向压电通道明显转移。本研究阐明了mmp介导的PCM降解、结构功能动力学和软骨细胞机械转导之间的相互作用,强调了PCM在维持正常软骨细胞功能和机械传感方面的关键作用。意义声明:骨关节炎(OA)是一种普遍的退行性关节疾病,影响全球数百万人。其病理的核心是基质金属蛋白酶(MMPs)降解细胞周围基质(PCM),破坏软骨细胞的机械转导,改变细胞对机械刺激的反应。本研究探讨了MMP-2、MMP-3和MMP-7对PCM结构和软骨细胞力学传感的影响。我们的研究结果表明,mmp诱导的降解显著损害了PCM的结构完整性,导致软骨细胞机械转导动力学的改变。在受MMPs影响的细胞中,降解特异性地将离子通道的主要功能从TRPV4重定向到PIEZO通道。这突出了mmp介导的PCM降解、软骨细胞机械转导以及结构-功能动力学之间的相互作用,强调了PCM在维持正常软骨细胞功能和机械传感方面的关键作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Matrix metalloproteinases accelerate pericellular matrix breakdown and disrupt mechanotransduction in osteoarthritis

Matrix metalloproteinases accelerate pericellular matrix breakdown and disrupt mechanotransduction in osteoarthritis
The pericellular matrix (PCM) is a specialized, narrow matrix surrounding each chondrocyte in articular cartilage, together constituting the chondron - the fundamental metabolic and functional unit of cartilage. The PCM plays a vital role in mediating biomechanical and biochemical signals essential for chondrocyte function. In osteoarthritis (OA), a chronic joint disorder characterized by progressive cartilage degradation, the PCM is one of the earliest sites of catabolic degradation, primarily driven by matrix metalloproteinases (MMPs). This study aims to investigate the functional relationship between PCM degradation and chondrocyte mechanosignaling, with an emphasis on MMP-driven changes in mechanotransduction in osteoarthritic cartilage.
Human chondrons (N = 64) were incubated with MMP-2, MMP-3, and MMP-7, and structural changes were assessed histologically by evaluating perlecan and collagen type VI. Cellular elasticity was measured using atomic force microscopy (AFM), and mechanically evoked intracellular Ca2+ transients were assessed via AFM single-cell indentations (500 nN).
All three MMPs induced pronounced catabolic effects on the PCM structure, showing distinct impacts on collagen type VI and perlecan, as well as on the biomechanical properties (p < 0.001). MMP-driven alterations in PCM integrity significantly reduced the Ca2+ transients of chondrons in response to mechanical stimuli (p < 0.001). While TRPV4 activation was elevated in intact chondrons, PIEZO channels were involved in mechanotransduction in both healthy and MMP-treated chondrons. In osteoarthritic stages, the mechanotransduction dynamics shifted significantly towards PIEZO channels.
This study elucidates the interplay between MMP-mediated PCM degradation, structural-functional dynamics, and chondrocyte mechanotransduction, underscoring the critical role of the PCM in maintaining normal chondrocyte functionality and mechanosensing.

Statement of significance

Osteoarthritis (OA) is a prevalent degenerative joint disease affecting millions worldwide. Central to its pathology is the degradation of the pericellular matrix (PCM) by matrix metalloproteinases (MMPs), which disrupts chondrocyte mechanotransduction, altering cellular responses to mechanical stimuli. This study explores the impact of MMP-2, MMP-3, and MMP-7 on PCM structure and chondrocyte mechanosensing. Our results reveal that MMP-induced degradation significantly compromises PCM structural integrity, leading to altered mechanotransduction dynamics in chondrocytes. Degradation specifically redirects the primary function of ion channels from TRPV4 to PIEZO channels in cells impacted by MMPs. This highlights the interplay between MMP-mediated PCM degradation, chondrocyte mechanotransduction and as thus structural-functional dynamics, underscoring the critical role of the PCM in maintaining normal chondrocyte functionality and mechanosensing.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
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