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首页> 外文期刊>International Journal of Polymeric Materials >Biomedical segmented polyurethanes based on polyethylene glycol, poly(epsilon-caprolactone-co-D,L-lactide), and diurethane diisocyanates with uniform hard segment: Synthesis and properties
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Biomedical segmented polyurethanes based on polyethylene glycol, poly(epsilon-caprolactone-co-D,L-lactide), and diurethane diisocyanates with uniform hard segment: Synthesis and properties

机译:基于聚乙二醇,聚(ε-己内酯-co-D,L-丙交酯)和硬段均一的二氨基甲酸酯二异氰酸酯的生物医学分段聚氨酯:合成与性能

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摘要

In the study, a new approach for synthesizing biomedical segmented polyurethanes (SPUs) based on polyethylene glycol (PEG, M-n=800), poly(epsilon-caprolactone-co-D,L-lactide) (PCLA) and aliphatic diurethane diisocyanates with a long uniform hard segment was developed. By the chain extension of a mixture of PEG diol and PCLA diol with diurethane diisocyanates based on inexpensive 1,6-hexanediisocyanate, three SPUs (SPU-I, SPU-II, and SPU-III) with different contents of hydrophilic segments (PEG) and hard segments were obtained. The chemical structures of diurethane diisocyanates, PCLA and SPUs were confirmed by H-1 NMR, C-13 NMR, FT-IR, HR-TOF-MS, and GPC. The SPU films exhibited similar thermostability, indicating that the hard segment content marginally affects on the thermostability. From the results of differential scanning calorimetry, two glass transition temperatures were observed, suggesting the microphase separation of soft and hard segments. The SPU films exhibited satisfactory mechanical properties with ultimate stress of 17.4-22.3MPa and strain at break of 890-1060%, and the initial modulus increased with the increasing content of hard segments. In vitro degradation studies indicated that the time of SPU films to become fragments was 22-33 days, and the degradation rate increased with the increasing content of hydrophilic segments in SPU. Hence, the degradation time of SPU films could be controlled by adjusting the PEG content in SPU, which made them good candidates for further biomedical applications. Studies of in vitro drug release were conducted using vitamin B1 as model drugs. Drug-loaded films exhibited a high initial release rate and matrix-controlled release for more than two weeks, thereby demonstrating a promising material for a long-acting controlled release system. Cytotoxicity test of film extracts and cell attachment on the film surface were conducted using L929 mouse fibroblasts, and the results indicated that the SPU films possess excellent cytocompatibility and cell adhesive ability.
机译:在这项研究中,一种基于聚乙二醇(PEG,Mn = 800),聚(ε-己内酯-co-D,L-丙交酯)(PCLA)和脂肪族二氨基甲酸酯二异氰酸酯的生物医学分段聚氨酯(SPU)的合成新方法。形成了长而均匀的硬段。通过将PEG二醇和PCLA二醇与基于廉价1,6-己二异氰酸酯的二氨基甲酸酯二异氰酸酯的混合物进行扩链,可制得三种具有不同亲水链段含量的SPU(SPU-1,SPU-II和SPU-III)并获得了硬段。通过H-1 NMR,C-13 NMR,FT-IR,HR-TOF-MS和GPC确认了二氨基甲酸酯二异氰酸酯,PCLA和SPU的化学结构。 SPU膜表现出相似的热稳定性,表明硬链段含量对热稳定性的影响很小。从差示扫描量热法的结果,观察到两个玻璃化转变温度,表明软段和硬段的微相分离。 SPU薄膜具有令人满意的机械性能,极限应力为17.4-22.3MPa,断裂应变为890-1060%,初始模量随硬链段含量的增加而增加。体外降解研究表明,SPU薄膜形成碎片的时间为22-33天,降解速率随SPU中亲水链段含量的增加而增加。因此,可以通过调节SPU中的PEG含量来控制SPU膜的降解时间,这使其成为进一步生物医学应用的良好候选者。使用维生素B1作为模型药物进行了体外药物释放研究。载有药物的薄膜在超过两周的时间内显示出较高的初始释放速率和基质控释效果,从而证明了长效控释系统的前景广阔。用L929小鼠成纤维细胞进行了膜提取物的细胞毒性试验和细胞附着,结果表明SPU膜具有良好的细胞相容性和细胞粘附能力。

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