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通过硫醇-烯反应对聚(全环内酯-共-ε-己内酯)进行 N-乙酰半胱氨酸侧链官能化。

N-acetylcysteine side-chain functionalization of poly(globalide-co-ε-caprolactone) through thiol-ene reaction.

机构信息

Department of Chemical Engineering and Food Engineering, Federal University of Santa Catarina, EQA/UFSC - C.P. 476, CEP 88040-900 Florianópolis, SC, Brazil.

Department of Chemical Engineering and Food Engineering, Federal University of Santa Catarina, EQA/UFSC - C.P. 476, CEP 88040-900 Florianópolis, SC, Brazil.

出版信息

Mater Sci Eng C Mater Biol Appl. 2019 Jan 1;94:477-483. doi: 10.1016/j.msec.2018.09.060. Epub 2018 Sep 24.

Abstract

N-Acetylcysteine (NAC) is a drug well known for its antimucolytic action, antioxidant activity and ability to protect cells from oxidative stress. Conjugation of NAC with double bonds in the main polymer chain of poly(globalide-co-ε-caprolactone) (PGlCL) through thiol-ene reaction is reported. Different globalide (Gl) (an unsaturated macrolactone) to ε-caprolactone (CL) ratios were employed for PGlCL synthesis. The polymeric materials (PGlCL-NAC) were evaluated in terms of the number of functionalized double bonds, thermal properties, affinity for water and antioxidant potential. PGlCL-NAC containing more globalide repeating units presented higher degree of functionalization, due to the higher number of double bonds available to react through thiol-ene coupling. For high globalide contents (Gl/CL ratios above 50/50), NAC coupling in PGlCL chains resulted in completely amorphous copolymers with a more hydrophilic character, which should enhance bioresorption and cell adhesion characteristics. Functionalization also gave rise to a thioether linkage, conferring to PGlCL-NAC an antioxidant character, important for biomedical applications, where the material could combat cellular oxidative-stress.

摘要

N-乙酰半胱氨酸(NAC)是一种众所周知的药物,具有黏液溶解作用、抗氧化活性和保护细胞免受氧化应激的能力。据报道,NAC 通过硫醇-烯反应与聚(ε-己内酯-共-全球内酯)(PGlCL)主聚合物链中的双键发生共轭。采用不同的全球内酯(Gl)(不饱和大环内酯)与ε-己内酯(CL)的比例合成 PGlCL。对聚合物材料(PGlCL-NAC)的功能化双键数量、热性能、亲水性和抗氧化潜力进行了评价。由于通过硫醇-烯偶联反应可利用的双键数量较多,因此含有更多全球内酯重复单元的 PGlCL-NAC 具有更高的官能化程度。对于高全球内酯含量(Gl/CL 比高于 50/50),NAC 在 PGlCL 链中的偶联导致完全无定形共聚物,具有更高的亲水性,这应增强生物可吸收性和细胞粘附特性。官能化还产生了硫醚键,赋予 PGlCL-NAC 抗氧化特性,这对于生物医学应用很重要,其中材料可以对抗细胞氧化应激。

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