Center for Biomaterials, Biomedical Research Institute, Korea Institute of Science and Technology, Seoul, 136-791, Republic of Korea; Department of Chemical and Biological Engineering, Korea University, Seoul, 136-701, Republic of Korea.
Small. 2014 Sep 24;10(18):3783-94. doi: 10.1002/smll.201302880. Epub 2014 May 12.
Biodegradable polymers such as poly(L-lactide) (PLLA) have been widely utilized as materials for biomedical applications. However, the relatively poor mechanical properties of PLLA and its acid-induced cell inflammation brought about by the acidic byproducts during biodegradation pose severe problems. In this study, these drawbacks of PLLA are addressed using a stereocomplex structure, where oligo-D-lactide-grafted magnesium hydroxide (MgO-ODLA) is synthesized by grafting d-lactide onto the surface of magnesium hydroxide, which is then blended with a PLLA film. The structure, morphology, pH change, thermal and mechanical properties, in-vitro cytotoxicity, and inflammation effect of the MgO-ODLAs and their PLLA composites are evaluated through various analyses. The PLLA/MgO70-ODLA30 (0-20 wt%) composite with a stereocomplex structure shows a 20% increase in its tensile strength and an improvement in the modulus compared to its oligo-L-lactide (PLLA/MgO70-OLLA30) counterpart. The interfacial interaction parameter of PLLA/MgO70-ODLA30 (5.459) has superior properties to those of PLLA/MgO70-OLLA30 (4.013) and PLLA/Mg(OH)2 (1.774). The cell cytotoxicity and acid-induced inflammatory response are suppressed by the neutralizing effect of the MgO-ODLAs. In addition, the inflammatory problem caused by the rapid acidification of the stereocomplex structure is also addressed. As a result, the stereocomplex structure of the MgO-ODLA/PLLA composite can be used to overcome the problems associated with the biomedical applications of PLLA films.
可生物降解聚合物如聚(L-丙交酯)(PLLA)已被广泛用作生物医学应用的材料。然而,PLLA 相对较差的机械性能及其在生物降解过程中酸性副产物引起的酸性细胞炎症是严重的问题。在这项研究中,通过使用立构复合物结构来解决 PLLA 的这些缺点,其中寡-D-丙交酯接枝氢氧化镁(MgO-ODLA)通过将 D-丙交酯接枝到氢氧化镁表面来合成,然后与 PLLA 薄膜共混。通过各种分析评估了 MgO-ODLAs 及其 PLLA 复合材料的结构、形态、pH 值变化、热机械性能、体外细胞毒性和炎症效应。与寡 L-丙交酯(PLLA/MgO70-OLLA30)相比,具有立构复合物结构的 PLLA/MgO70-ODLA30(0-20wt%)复合材料的拉伸强度提高了 20%,模量也得到了提高。PLLA/MgO70-ODLA30(5.459)的界面相互作用参数优于 PLLA/MgO70-OLLA30(4.013)和 PLLA/Mg(OH)2(1.774)。MgO-ODLAs 的中和作用抑制了细胞毒性和酸诱导的炎症反应。此外,还解决了立构复合物结构快速酸化引起的炎症问题。因此,MgO-ODLA/PLLA 复合材料的立构复合物结构可用于克服 PLLA 薄膜生物医学应用中存在的问题。