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首页> 外文期刊>CrystEngComm >Crystallization and biocompatibility enhancement of 3D-printed poly(L-lactide) vascular stents with long chain branching structures
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Crystallization and biocompatibility enhancement of 3D-printed poly(L-lactide) vascular stents with long chain branching structures

机译:长链支化结构的三维印刷聚(L-丙交酯)血管支架结晶和生物相容性增强

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摘要

A series of adjustable long chain branching poly(L-lactide)s (b-PLAs) was prepared by reactive processing of linear PLA using pyromellitic dianhydride (PMDA) and polyfunctional epoxy ether (PFE) as the branching agent and their vascular stents were fabricated via 3D-printing. Fourier-transform infrared (FTIR) spectroscopy and gel permeation chromatography (GPC) results indicated that the chain branching reaction occurs and the average molecular weight increases obviously after the chain branching reaction. Rheological tests on the b-PLAs demonstrated that they are composed of a symmetric- or asymmetric-star, or tree-like chain configuration. The volume fraction of the branching structure of the chains increased from 0.03 to 0.3 with increasing branching agent content. The effects of the branching structure on the melt crystallization behavior of b-PLAs were investigated by means of differential scanning calorimetry (DSC). The isothermal crystallization results showed that the half-time of crystallization (t1/2) of the samples decreased from 16.8 min for linear PLA to 2.3 min when the branching agent content was 2 wt% at 106 degrees C. Also, as observed from polarized optical microscopy experiments, the nucleation density of the b-PLAs significantly increased with increasing volume fraction of the branching structure because the enrichment of segments around the branching structure facilitated nucleation, thus the b-PLA samples have a higher probability to form a primary nucleus than linear PLA. Moreover, mechanical testing demonstrated that forming the branching structure enabled the effective modification of the mechanical properties of PLA. The microstructures with a smaller spherulite size and higher crystallinity of the b-PLAs improved their tensile strength and modulus from 45.7 MPa and 1.63 GPa to 77.2 MPa and 3.41 GPa, respectively. Furthermore, the radial force performance of the 3D printed b-PLA vascular stents was enhanced from 4.8 to 13.7 N by the branching structure of the chains. The CCK-8 assay results indicated that the osteoblast activity of b-PLA is higher than that of linear PLA, and the scanning electron microscopy (SEM) results also indicated that b-PLA was covered and flattened with a better attachment morphology for the osteoblasts than PLA. Therefore, the b-PLAs with a long chain branching structure could effectively facilitate cell growth, proliferation, and differentiation.
机译:通过使用吡啉代雷酐(PMDA)的直链PLA的直线PLA和多官能环氧醚(PFE)作为支化剂,制备了一系列可调节的长链支聚(B-PLAs),并制备其血管支架通过3D打印。傅里叶变换红外(FTIR)光谱和凝胶渗透色谱(GPC)结果表明,在链支化反应后,发生链分支反应并且平均分子量明显增加。 B-PLAS上的流变测试证明它们由对称或不对称之星或树状链构成。随着支化剂含量的增加,链的支链结构的体积分数从0.03增加到0.3。通过差示扫描量热法(DSC)研究了支化结构对B层的熔体结晶行为的影响。等温结晶结果表明,当分支剂含量为106℃时,样品的半次结晶(T1 / 2)从16.8分钟降低到2.3分钟。此外,如偏振的观察到光学显微镜实验,随着分支结构的体积分数增加,B-PLA的成核密度显着增加,因为支化结构围绕分支结构促进核心的区段,因此B-PLA样品具有比形成初级核的更高概率线性PLA。此外,机械测试证明形成分支结构使得能够有效地改变PLA的机械性能。具有较小的球晶尺寸和高结晶度的微观结构改善了它们的拉伸强度和25.7MPa和1.63GPa至77.2MPa和3.41GPa的抗拉强度。此外,通过链的分支结构从4.8至13.7 n增强3D印刷的B-PLA血管支架的径向力性能。 CCK-8测定结果表明,B-PLA的成骨细胞活性高于线性PLA,扫描电子显微镜(SEM)结果也表明B-PLA覆盖并扁平,与成骨细胞的更好的附着形貌比pla。因此,具有长链支化结构的B-PLA可以有效地促进细胞生长,增殖和分化。

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  • 来源
    《CrystEngComm》 |2020年第4期|共12页
  • 作者单位

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Dept Mat Sci Shanghai Peoples R China;

    Fudan Univ Zhongshan Hosp Dept Orthoped Surg Shanghai Peoples R China;

    Beijing Adv Med Technol Ltd Inc Beijing Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学工业;晶体学;
  • 关键词

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