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软骨微球在机械刺激下的复杂变形促进了软骨细胞的基因表达。

Complex deformation of cartilage micropellets following mechanical stimulation promotes chondrocyte gene expression.

机构信息

IRMB, University of Montpellier, INSERM, Montpellier, France.

LMGC, CNRS, University of Montpellier, Montpellier, France.

出版信息

Stem Cell Res Ther. 2023 Aug 30;14(1):226. doi: 10.1186/s13287-023-03459-5.

Abstract

BACKGROUND

Articular cartilage (AC)'s main function is to resist to a stressful mechanical environment, and chondrocytes are responding to mechanical stress for the development and homeostasis of this tissue. However, current knowledge on processes involved in response to mechanical stimulation is still limited. These mechanisms are commonly investigated in engineered cartilage models where the chondrocytes are included in an exogeneous biomaterial different from their natural extracellular matrix. The aim of the present study is to better understand the impact of mechanical stimulation on mesenchymal stromal cells (MSCs)-derived chondrocytes generated in their own extracellular matrix.

METHODS

A fluidic custom-made device was used for the mechanical stimulation of cartilage micropellets obtained from human MSCs by culture in a chondrogenic medium for 21 days. Six micropellets were positioned into the conical wells of the device chamber and stimulated with different signals of positive pressure (amplitude, frequency and duration). A camera was used to record the sinking of each micropellet into their cone, and micropellet deformation was analyzed using a finite element model. Micropellets were harvested at different time points after stimulation for RT-qPCR and histology analysis.

RESULTS

Moderate micropellet deformation was observed during stimulation with square pressure signals as mean von Mises strains between 6.39 and 14.35% were estimated for amplitudes of 1.75-14 kPa superimposed on a base pressure of 50% of the amplitude. The compression, tension and shear observed during deformation did not alter micropellet microstructure as shown by histological staining. A rapid and transient increase in the expression of chondrocyte markers (SOX9, AGG and COL2B) was measured after a single 30-min stimulation with a square pressure signal of 3.5 kPa amplitude superimposed on a minimum pressure of 1.75 kPa, at 1 Hz. A small change of 1% of cyclical deformations when using a square pressure signal instead of a constant pressure signal induced a fold change of 2 to 3 of chondrogenic gene expression. Moreover, the expression of fibrocartilage (COL I) or hypertrophic cartilage (COL X, MMP13 and ADAMTS5) was not significantly regulated, except for COL X.

CONCLUSIONS

Our data demonstrate that the dynamic deformation of cartilage micropellets by fluidic-based compression modulates the expression of chondrocyte genes responsible for the production of a cartilage-like extracellular matrix. This lays the foundations for further investigating the chondrocyte mechanobiology and the cartilage growth under mechanical stimulation.

摘要

背景

关节软骨(AC)的主要功能是抵抗有压力的机械环境,而软骨细胞通过对机械压力的反应来维持组织的生长和稳态。然而,目前对于机械刺激反应过程的认识仍然有限。这些机制通常在工程化软骨模型中进行研究,其中软骨细胞被包含在与天然细胞外基质不同的外源性生物材料中。本研究的目的是更好地理解机械刺激对来源于间充质基质细胞(MSCs)并在其自身细胞外基质中生成的软骨细胞的影响。

方法

使用定制的流体装置对通过在软骨形成培养基中培养 21 天获得的人 MSCs 来源的软骨微球进行机械刺激。将 6 个微球放置在装置腔的锥形孔中,并施加不同的正压信号(幅度、频率和持续时间)进行刺激。使用相机记录每个微球沉入其锥形孔的情况,并使用有限元模型分析微球的变形。在刺激后不同时间点收获微球进行 RT-qPCR 和组织学分析。

结果

在使用方形压力信号刺激时观察到适度的微球变形,估计平均 von Mises 应变在 6.39%至 14.35%之间,施加的幅度为 1.75-14kPa,基础压力为幅度的 50%。变形过程中观察到的压缩、拉伸和剪切并未改变微球的微观结构,如组织学染色所示。在使用 3.5kPa 幅度的方形压力信号叠加 1.75kPa 的最小压力进行单次 30 分钟刺激后,快速且短暂地增加了软骨细胞标志物(SOX9、AGG 和 COL2B)的表达。使用方形压力信号代替恒定压力信号时,周期性变形的小变化 1%会导致软骨生成基因表达的 2 到 3 倍的折叠变化。此外,除 COLX 外,纤维软骨(COL I)或肥大软骨(COL X、MMP13 和 ADAMTS5)的表达没有显著调节。

结论

我们的数据表明,基于流体的压缩对软骨微球的动态变形调节负责产生软骨样细胞外基质的软骨细胞基因的表达。这为进一步研究软骨细胞的机械生物学和机械刺激下的软骨生长奠定了基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3d20/10469822/e3afa70617d1/13287_2023_3459_Fig1_HTML.jpg

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