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首页> 外文期刊>Biomacromolecules >Biodegradable Hyperbranched Amphiphilic Polyurethane Multiblock Copolymers Consisting of Poly(propylene glycol), Poly(ethylene glycol), and Polycaprolactone as in Situ Thermogels
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Biodegradable Hyperbranched Amphiphilic Polyurethane Multiblock Copolymers Consisting of Poly(propylene glycol), Poly(ethylene glycol), and Polycaprolactone as in Situ Thermogels

机译:原位热凝胶,由聚丙二醇,聚乙二醇和聚己内酯组成的可生物降解的超支化两亲聚氨酯多嵌段共聚物

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This paper reports the synthesis and characterization of new hyperbranched amphiphilic polyurethane multiblock copolymers consisting of poly(propylene glycol) (PPG), poly(ethylene glycol) (PEG), and polycaprolactone (PCL) segments as in situ thermogels. The hyperbranched poly(PPG/ PEG/PCL urethane)s, termed as HBPEC copolymers, were synthesized from PPG-diol, PEG-diol, and PCL-triol by using 1,6-hexamethylene diisocyanate (HMDI) as a coupling agent. The compositions and structures of HBPEC copolymers were determined by GPC and ~1H NMR spectroscopy. We carried out comparative studies of the new hyperbranched copolymers with their linear counterparts, the linear poly(PPG/PEG/PCL urethane) (LPEC) copolymer and Pluronic F127 PEG-PPG-PEG block copolymer, in terms of their self-assembly and aggregation behaviors and thermoresponsive properties. HBPEC copolymers were found to show thermoresponsive micelle formation and aggregation behaviors. Particularly, the lower critical solution temperature (LCST) of the copolymers was signincandy aifected by the copolymer architecture. HBPEC copolymers showed much lower LCST than LPEC, the linear counterpart. Our studies revealed that the effect of hyperbranch architecture was more prominent in the gelation of the copolymers. The aqueous solutions of HBPEC copolymers exhibited thermogelling behaviors at critical gelation concentrations (CGCs) ranging from 4.3 to 7.4 wt %. These values are much lower than those reported on other PCL-Contained linear thermogelling copolymers and Pluronic F127 copolymer. In addition, the CGC of HBPEC copolymers is much lower than the control LPEC copolymer. More interestingly, at high temperatures, while LPEC and other linear thermogelling copolymers formed turbid sol, HBPEC formed a dehydrated gel. Our data suggest that these phenomena are caused by the hyperbranched structure of HBPEC copolymers, which could increase the interaction of copolymer branches and enhance the chain association through synergetic hydrogen bonding effect. The thermogelling behavior of HBPEC block copolymers was further evidenced by the ~1H NMR molecular dynamic study and rheological study, which further support the above hypothesis. The hydrolytic degradation study showed that the HBPEC copolymer hydrogels are biodegradable under physiological conditions. Together with the good cell biocompatibility demonstrated by the cytotoxicity study, the new thermogelling copolymers reported in this paper could potentially be used as m situ-forming hydrogels for biomedical applications.
机译:本文报道了由原位热凝胶组成的新型超支化两亲性聚氨酯多嵌段共聚物的合成和表征,该共聚物由聚丙二醇(PPG),聚乙二醇(PEG)和聚己内酯(PCL)链段组成。通过使用1,6-六亚甲基二异氰酸酯(HMDI)作为偶联剂,由PPG-二醇,PEG-二醇和PCL-三醇合成称为HBPEC共聚物的超支化聚(PPG / PEG / PCL聚氨酯)。 HBPEC共聚物的组成和结构通过GPC和〜1H NMR光谱测定。我们对新型超支化共聚物及其线性对应物,线性聚(PPG / PEG / PCL聚氨酯)(LPEC)共聚物和Pluronic F127 PEG-PPG-PEG嵌段共聚物进行了自组装和聚集的比较研究行为和热响应特性。发现HBPEC共聚物显示出热响应胶束的形成和聚集行为。特别地,共聚物的较低的临界溶液温度(LCST)受到共聚物结构的显着影响。 HBPEC共聚物的LCST比线性对应物LPEC低得多。我们的研究表明,超支化体系结构的影响在共聚物的凝胶化中更为突出。 HBPEC共聚物的水溶液在临界胶凝浓度(CGC)为4.3至7.4 wt%的范围内表现出热胶凝行为。这些值远低于其他含PCL的线性热胶凝共聚物和Pluronic F127共聚物的报告值。此外,HBPEC共聚物的CGC远低于对照LPEC共聚物。更有趣的是,在高温下,虽然LPEC和其他线性热胶凝共聚物形成浑浊的溶胶,而HBPEC却形成了脱水凝胶。我们的数据表明,这些现象是由HBPEC共聚物的超支链结构引起的,可通过协同氢键作用增加共聚物支链的相互作用并增强链缔合。 HBPEC嵌段共聚物的热胶凝行为由〜1H NMR分子动力学研究和流变学研究进一步证明,这进一步支持了上述假设。水解降解研究表明,HBPEC共聚物水凝胶在生理条件下可生物降解。结合细胞毒性研究表明的良好的细胞生物相容性,本文报道的新型热凝胶共聚物可潜在地用作生物医学应用的原位形成水凝胶。

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