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聚乳酸及其含葡萄糖基团的两亲性共聚物的立体复合物的制备与性能

Preparation and Properties of Stereocomplex of Poly(lactic acid) and Its Amphiphilic Copolymers Containing Glucose Groups.

作者信息

Qi Liyan, Zhu Qianjin, Cao Dan, Liu Tingting, Zhu Kevin R, Chang Kaixin, Gao Qinwei

机构信息

College of Chemical Engineering, Nanjing Forestry University, Nanjing 210037, China.

出版信息

Polymers (Basel). 2020 Mar 31;12(4):760. doi: 10.3390/polym12040760.

Abstract

The stereocomplex of poly(lactic acid) containing glucose groups (sc-PLAG) was prepared by solution blending from equal amounts of poly(l-lactic acid) (PLLA) and poly(d-lactic acid--glucose) (PDLAG), which were synthesized from l- and d-lactic acid and glucose by melt polycondensation. The methods, including H nuclear magnetic resonance spectroscopy (H NMR), gel permeation chromatography (GPC), differential scanning calorimetry (DSC), X-ray diffraction (XRD), fourier transform infrared spectroscopy (FT-IR), thermogravimetric analysis (TGA), polarizing microscope (POM), scanning electron microscope (SEM), transmission electron microscope (TEM), and contact angle were used to determine the effects of the stereocomplexation of enantiomeric poly(lactic acid) (PLA) units, the amphiphilicity due to glucose residues and lactic acid units, and the interaction of glucose residues with lactic units on the crystallization performance, hydrophilicity, thermal stability, and morphology of samples. The results showed PDLAG was multi-armed, and partial OH groups of glucose residues in PDLAG might remain unreacted. The molecular weight (), dispersity (), and glucose proportion in the chain of PDLAG thereby had significant effects on sc-PLAG. There were the stereocomplexation of enantiomeric lactic units and the amphiphilic self-assembly of PDLAG in sc-PLAG, which resulted in glucose groups mainly in the surface phase and lactic units in the bulk phase. The sc-PLAG only possessed the stereocomplex crystal owing to the interaction between nearly equimolar of l-lactic units of PLLA and d-lactic units of PDLAG, and had no homo-crystallites of l- or d-lactic units, which improved the melting temperature () of sc-PLAG about 50 °C higher than that of PLLA. Glucose groups in sc-PLAG played an important role by forming heterogeneous nucleation, promoting amphiphilic self-assembly, and affecting the ordered arrangement of lactic units. The glass transition temperature (), the melting temperature (), crystallinity, crystallization rate, and water absorption of sc-PLAG showed similar changes with the increased glucose content in feeding. All these parameters increased at first, and the maximum appeared as glucose content in feeding about 2%, such as the maximum crystallinity of 48.8% and the maximum water absorption ratio being 11.7%. When glucose content in feeding continued increasing, all these performances showed a downward trend due to the decrease of arrangement regularity of lactic acid chains caused by glucose groups. Moreover, the contact angle of sc-PLAG decreased gradually with the increased glucose content in feeding to obtain the minimum 77.5° as the glucose content in feeding being 5%, while that of PLLA was 85.0°. The sc-PLAG possessed a regular microsphere structure, and its microspheres with a diameter of about 200 nm could be observed. In conclusion, sc-PLAG containing proper glucose amount could effectively enhance the crystallinity, hydrophilicity, and thermal stability of PLA material, which is useful for drug delivery, a scaffold for tissue engineering, and other applications of biomedicine.

摘要

含葡萄糖基团的聚乳酸立体复合物(sc-PLAG)通过溶液共混法由等量的聚(L-乳酸)(PLLA)和聚(D-乳酸-葡萄糖)(PDLAG)制备而成,PLLA和PDLAG分别由L-和D-乳酸以及葡萄糖通过熔融缩聚反应合成。采用氢核磁共振光谱(H NMR)、凝胶渗透色谱(GPC)、差示扫描量热法(DSC)、X射线衍射(XRD)、傅里叶变换红外光谱(FT-IR)、热重分析(TGA)、偏光显微镜(POM)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)以及接触角等方法,来确定对映体聚乳酸(PLA)单元的立体复合、葡萄糖残基和乳酸单元引起的两亲性以及葡萄糖残基与乳酸单元的相互作用对样品的结晶性能、亲水性、热稳定性和形态的影响。结果表明,PDLAG为多臂结构,且PDLAG中葡萄糖残基的部分羟基可能未反应。因此,PDLAG的分子量、分散度以及链中的葡萄糖比例对sc-PLAG有显著影响。sc-PLAG中存在对映体乳酸单元的立体复合以及PDLAG的两亲性自组装,这导致葡萄糖基团主要分布在表面相,而乳酸单元分布在本体相。由于PLLA的L-乳酸单元与PDLAG的D-乳酸单元近乎等摩尔相互作用,sc-PLAG仅具有立体复合晶体,不存在L-或D-乳酸单元的均聚物微晶,这使得sc-PLAG的熔点比PLLA提高了约50℃。sc-PLAG中的葡萄糖基团通过形成异相成核、促进两亲性自组装以及影响乳酸单元的有序排列发挥重要作用。随着进料中葡萄糖含量的增加,sc-PLAG的玻璃化转变温度、熔点、结晶度、结晶速率和吸水率呈现相似的变化。所有这些参数起初均增加,当进料中葡萄糖含量约为2%时出现最大值,如最大结晶度为48.8%,最大吸水率为11.7%。当进料中葡萄糖含量继续增加时,由于葡萄糖基团导致乳酸链排列规整性降低,所有这些性能均呈下降趋势。此外,随着进料中葡萄糖含量的增加,sc-PLAG的接触角逐渐减小,当进料中葡萄糖含量为5%时达到最小值77.5°,而PLLA的接触角为85.0°。sc-PLAG具有规则的微球结构,可观察到其直径约为200nm的微球。总之,含有适量葡萄糖的sc-PLAG能够有效提高PLA材料的结晶度、亲水性和热稳定性,这对于药物递送、组织工程支架以及生物医学的其他应用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f4c5/7240496/c981d3027e0f/polymers-12-00760-sch001.jpg

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