Cyclic Mechanical Stress Induces Extracellular Matrix Degradation in Cultured Chondrocytes via Gene Expression of Matrix Metalloproteinases and Interleukin-1

1999 ◽  
Vol 125 (5) ◽  
pp. 966-975 ◽  
Author(s):  
T. Fujisawa ◽  
T. Hattori ◽  
K. Takahashi ◽  
T. Kuboki ◽  
A. Yamashita ◽  
...  
RSC Advances ◽  
2015 ◽  
Vol 5 (30) ◽  
pp. 23758-23766 ◽  
Author(s):  
Bin Huang ◽  
Huangqin Chen

The overexpression of MMPs results in excessive extracellular matrix degradation and oral ulcer healing delay.


2013 ◽  
Vol 2013 ◽  
pp. 1-18 ◽  
Author(s):  
Spyros A. Syggelos ◽  
Alexios J. Aletras ◽  
Ioanna Smirlaki ◽  
Spyros S. Skandalis

The leading complication of total joint replacement is periprosthetic osteolysis, which often results in aseptic loosening of the implant, leading to revision surgery. Extracellular matrix degradation and connective tissue remodeling around implants have been considered as major biological events in the periprosthetic loosening. Critical mediators of wear particle-induced inflammatory osteolysis released by periprosthetic synovial cells (mainly macrophages) are inflammatory cytokines, chemokines, and proteolytic enzymes, mainly matrix metalloproteinases (MMPs). Numerous studies reveal a strong interdependence of MMP expression and activity with the molecular mechanisms that control the composition and turnover of periprosthetic matrices. MMPs can either actively modulate or be modulated by the molecular mechanisms that determine the debris-induced remodeling of the periprosthetic microenvironment. In the present study, the molecular mechanisms that control the composition, turnover, and activity of matrix macromolecules within the periprosthetic microenvironment exposed to wear debris are summarized and presented. Special emphasis is given to MMPs and their endogenous tissue inhibitors (TIMPs), as well as to the proteasome pathway, which appears to be an elegant molecular regulator of specific matrix macromolecules (including specific MMPs and TIMPs). Furthermore, strong rationale for potential clinical applications of the described molecular mechanisms to the treatment of periprosthetic loosening and osteolysis is provided.


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