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周期性压缩可促进生物工程化软骨组织的形成,其依赖于 MT1-MMP 的上调。

Improved bioengineered cartilage tissue formation following cyclic compression is dependent on upregulation of MT1-MMP.

机构信息

CIHR BioEngineering of Skeletal Tissues Team, Department of Pathology and Laboratory Medicine, Mount Sinai Hospital, 600 University Avenue, Suite 6-500, Toronto, Ontario, Canada.

出版信息

J Orthop Res. 2010 Jul;28(7):921-7. doi: 10.1002/jor.21064.

Abstract

The generation of bioengineered cartilage tissue suitable for transplantation is a potential therapy to treat damaged cartilage. We have shown previously that the physical and biomechanical properties of bioengineered cartilage can be improved by the application of 30 min of cyclic compression by a mechanism involving sequential upregulation of gene and protein levels of membrane type-1 matrix metalloproteinase (MT1-MMP) and MMP-13. In the current study, we demonstrated that MT1-MMP is critical to this response, as blocking the upregulation of MT1-MMP prevented the improvement in tissue formation. MT1-MMP seems to act by inducing tissue remodeling as evidenced by the presence of aggrecan degradation products by Western blot analysis and increased release of matrix molecules into the media. Release of these molecules was diminished when MT1-MMP upregulation was prevented. This matrix degradation was likely due to MT1-MMP, as under conditions where MMP-13 expression is maintained (stimulation in the presence of MT1-MMP siRNA) the release of these matrix molecules into the media was still prevented. It also appears that MT1-MMP does not regulate MMP-13 gene expression, as MT1-MMP-siRNA pretreatment had no effect on MMP-13 expression following mechanical stimulation. Further analysis of the anabolic genes and proteins involved in mechanically stimulated cartilage will lead to better understanding of the mechanism(s) underlying tissue formation yielding improved bioengineered cartilage.

摘要

生成适合移植的生物工程软骨组织是治疗受损软骨的一种潜在疗法。我们之前已经表明,通过应用 30 分钟的循环压缩,可以改善生物工程软骨的物理和生物力学特性,其机制涉及膜型 1 基质金属蛋白酶 (MT1-MMP) 和 MMP-13 的基因和蛋白水平的顺序上调。在本研究中,我们证明 MT1-MMP 对于这种反应至关重要,因为阻断 MT1-MMP 的上调会阻止组织形成的改善。MT1-MMP 似乎通过诱导组织重塑来发挥作用,这可以通过 Western blot 分析存在聚集蛋白降解产物和基质分子向培养基中的释放增加来证明。当阻止 MT1-MMP 的上调时,这些分子的释放减少。这种基质降解可能是由于 MT1-MMP 引起的,因为在 MMP-13 表达得到维持的情况下(在存在 MT1-MMP siRNA 的刺激下),这些基质分子仍被阻止释放到培养基中。MT1-MMP 似乎也不调节 MMP-13 的基因表达,因为 MT1-MMP-siRNA 预处理对机械刺激后 MMP-13 的表达没有影响。进一步分析机械刺激软骨中涉及的合成代谢基因和蛋白质,将有助于更好地理解组织形成的机制,从而产生改良的生物工程软骨。

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