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不同含水量的酶可降解聚碳酸三亚甲酯基生物杂化网络的体内降解行为

In vivo degradation behavior of enzyme-degradable poly(trimethylene carbonate)-based biohybrid networks of varying water content.

作者信息

Taghavi Shadi, Amsden Brian G

机构信息

Department of Chemical Engineering and Human Mobility Research Centre Queen's University, Kingston ON K7L 3N6, Canada.

出版信息

Biomed Mater. 2020 Feb 17;15(2):025001. doi: 10.1088/1748-605X/ab62ff.

Abstract

Polymeric biohybrid networks have significant potential as supportive materials for soft connective tissue regeneration. Their success in this regard is determined by their initial mechanical properties, which are dependent on their water content, as well as the rate at which these properties change with time due to cell mediated degradation. In this study the in vivo degradation and tissue response following implantation of matrix metalloproteinase (MMP)-degradable poly(trimethylene carbonate) (PTMC)-based biohybrid networks were assessed in a Wistar rat model. The networks examined varied in equilibrium water content from circa 20% to 70% w/w. The networks degraded through MMP secretion by inflammatory cells at the tissue-material interface, generating a mass loss profile consistent with surface erosion but modulus and sol content changes consistent with a bulk erosion process. This degradation profile was explained in terms of a population gradient in MMP concentration from the surface to the bulk of the networks due to diffusion restrictions. A histological analysis of the tissue surrounding the implants confirmed a moderate tissue response comparable to that observed towards a Vicryl suture, suggesting that these new materials can be considered biocompatible.

摘要

聚合物生物杂交网络作为软结缔组织再生的支撑材料具有巨大潜力。它们在这方面的成功取决于其初始机械性能,而初始机械性能又取决于其含水量,以及由于细胞介导的降解导致这些性能随时间变化的速率。在本研究中,在Wistar大鼠模型中评估了植入基质金属蛋白酶(MMP)可降解的聚碳酸三亚甲酯(PTMC)基生物杂交网络后的体内降解和组织反应。所研究的网络平衡含水量在约20%至70% w/w之间变化。这些网络通过组织 - 材料界面处炎症细胞分泌的MMP进行降解,产生的质量损失曲线与表面侵蚀一致,但模量和溶胶含量变化与本体侵蚀过程一致。由于扩散限制,这种降解曲线可以用从网络表面到本体的MMP浓度的群体梯度来解释。对植入物周围组织的组织学分析证实了与对薇乔缝线观察到的类似的中度组织反应,表明这些新材料可被认为具有生物相容性。

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