Laboratory for Biomaterials, Materials Research Centre, ‡Department of Materials Engineering, and ⊥Center for Biosystems Science and Engineering, Indian Institute of Science , Bangalore 560012, India.
ACS Appl Mater Interfaces. 2016 Nov 2;8(43):29721-29733. doi: 10.1021/acsami.6b10711. Epub 2016 Oct 21.
Herein, we report the development of a unique architecture by chemically cross-linking salicylic acid (SA)-based poly(anhydride ester) onto a biodegradable amine-functionalized poly(caprolactone) (PCL), using lactic acid as a spacer. The ester and amide linkages in the SA-PCL polymer, synthesized through melt condensation, were confirmed by NMR and FT-IR spectroscopic techniques. The enzymatic and nonenzymatic hydrolytic degradation profile exhibited linear degradation kinetics over an extended time period (>5 weeks). The compatibility and growth of C2C12 myoblast cells were found to be significantly improved on the fast-degrading SA-PCL substrates compared to those over neat PCL and amine-functionalized PCL. Further, the decreased red blood cell damage, illustrated by 0.39% hemolysis activity and a minimal number of platelet adhesion on a SA-PCL polymeric surface confirmed good hemocompatibility of the as-synthesized polymer. Together with a moderate bactericidal property, the spectrum of properties of this novel polymer can be attributed to the synergistic effect of the presence of chemical moieties of SA and amine groups in PCL. In summary, it is considered that a SA-PCL-based cross-linked composite can be utilized as a new biodegradable polymer.
在此,我们报告了一种独特结构的开发,该结构通过将基于水杨酸(SA)的聚(酸酐酯)化学交联到可生物降解的胺功能化聚(己内酯)(PCL)上,使用乳酸作为间隔物。通过熔融缩合合成的 SA-PCL 聚合物中的酯和酰胺键通过 NMR 和 FT-IR 光谱技术得到了证实。酶促和非酶促水解降解曲线显示在较长时间内(>5 周)具有线性降解动力学。与纯 PCL 和胺功能化 PCL 相比,在快速降解的 SA-PCL 基质上,C2C12 成肌细胞的相容性和生长明显得到改善。此外,在 SA-PCL 聚合物表面上,红细胞损伤降低,溶血活性为 0.39%,血小板黏附数量最少,证实了所合成聚合物的良好血液相容性。与适度的杀菌性能相结合,这种新型聚合物的一系列性能可归因于 PCL 中 SA 和胺基团的化学结构的协同作用。总之,认为基于 SA-PCL 的交联复合材料可用作新型可生物降解聚合物。