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用于机械增强和减轻炎症的低聚丙交酯接枝氢氧化镁可生物降解聚(L-丙交酯)复合材料

Biodegradable poly(l-lactide) composites by oligolactide-grafted magnesium hydroxide for mechanical reinforcement and reduced inflammation.

作者信息

Kum Chang Hun, Cho Youngjin, Joung Yoon Ki, Choi Jiyeon, Park Kwideok, Seo Seong Ho, Park Yong Seek, Ahn Dong Jun, Han Dong Keun

机构信息

Center for Biomaterials, Biomedical Research Institute, Korea Institute of Science and Technology, Hwarangno 14-gil 5, Seongbuk-gu, Seoul 136-791, Korea.

出版信息

J Mater Chem B. 2013 Jun 7;1(21):2764-2772. doi: 10.1039/c3tb00490b. Epub 2013 Apr 26.

Abstract

Biodegradable polymers, such as poly(l-lactide) (PLLA), are very useful in many biomedical applications. However, their degradation by-products have been much of a concern as they are the sources of inflammatory reactions in the body. In this work, we suggest a novel composite system composed of PLLA and oligolactide-grafted magnesium hydroxide (Mg-OLA) that can overcome drawbacks caused by poor mechanical properties and inflammatory response of PLLA for biomedical applications. Mg-OLAs were synthesized by ring opening polymerization and the structure, morphology, pH change, thermal, and mechanical properties were analyzed using FTIR, SEM, pH meter, TGA, and UTM. In particular, the tensile strength and modulus of PLLA/Mg80-OLA20 (0-20 wt%) were higher than those of PLLA/magnesium hydroxide. The PLLA/Mg80-OLA20 composite was also very effective in neutralizing the acidic environment caused by the degradable by-product of the PLLA matrix. In vitro cell viability and the expression levels of COX-2 and IL-6 proteins in the PLLA composites were also evaluated. Cell viability increased to around 100% with increasing the amount of Mg80-OLA20 from 0 to 20 wt%. The expression levels of IL-6 and COX-2 were reduced dramatically when increasing the proportion of Mg80-OLA20 from 0 to 50 wt%. As a result, the incorporation of Mg-OLAs into the PLLA matrix could reinforce the mechanical properties as well as reduce the inflammatory response of the hybrid PLLA. Therefore, this hybrid composite system blending oligomer-grafted magnesium hydroxide in biodegradable polymers would be a promising strategy for avoiding current fatal problems in biomedical applications.

摘要

可生物降解的聚合物,如聚(L-丙交酯)(PLLA),在许多生物医学应用中非常有用。然而,它们的降解副产物一直备受关注,因为它们是体内炎症反应的来源。在这项工作中,我们提出了一种由PLLA和低聚丙交酯接枝的氢氧化镁(Mg-OLA)组成的新型复合体系,该体系可以克服PLLA在生物医学应用中因机械性能差和炎症反应而产生的缺点。通过开环聚合合成了Mg-OLA,并使用傅里叶变换红外光谱(FTIR)、扫描电子显微镜(SEM)、pH计、热重分析仪(TGA)和万能材料试验机(UTM)对其结构、形态、pH变化、热性能和机械性能进行了分析。特别是,PLLA/Mg80-OLA20(0-20 wt%)的拉伸强度和模量高于PLLA/氢氧化镁。PLLA/Mg80-OLA20复合材料在中和由PLLA基质的可降解副产物引起的酸性环境方面也非常有效。还评估了PLLA复合材料的体外细胞活力以及COX-2和IL-6蛋白的表达水平。随着Mg80-OLA20的量从0 wt%增加到20 wt%,细胞活力增加到约100%。当Mg80-OLA20的比例从0 wt%增加到50 wt%时,IL-6和COX-2的表达水平显著降低。结果,将Mg-OLA掺入PLLA基质中可以增强机械性能并降低杂化PLLA的炎症反应。因此,这种在可生物降解聚合物中混合低聚物接枝氢氧化镁的杂化复合体系将是一种有前途的策略,可避免生物医学应用中当前的致命问题。

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