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首页> 外文期刊>Journal of Applied Polymer Science >Molecular weight effect on theta-gel formation in poly(vinyl alcohol)-poly(ethylene glycol) mixtures
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Molecular weight effect on theta-gel formation in poly(vinyl alcohol)-poly(ethylene glycol) mixtures

机译:分子量对聚乙烯醇-聚乙二醇混合物中θ-凝胶形成的影响

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摘要

Injectable hydrogel formulations that undergo in situ gelation at body temperature are promising for minimally invasive tissue repair. This work focuses on the investigation of injectable poly(vinyl alcohol) (PVA) and poly(ethylene glycol) (PEG) mixtures. The injectable PVA-PEG aqueous solutions form a hydrogel as temperature is reduced to near body temperature, while filling a defect in the injection site. Gamma sterilization of these solutions compromises injectability presumably due to crosslinking of PVA. We hypothesized that by modifying the PEG molecular weight and its concentration, injectability of radiation sterilized PVA-PEG hydrogels can be optimized without compromising the mechanical properties of the resulting gel. The use of a bimodal mixture of higher and lower molecular weight PEG (600 and 200 g/mol) resulted in lower PVA/PEG solution viscosity, better injectability, and higher gel mechanical strength. The PVA/bimodal-PEG had a lower viscosity at 2733 ± 149 cP versus a viscosity of 5560 ± 278 cP for PVA/unimodal-PEG (400 g/mol). The gel formed with the bimodal PEG mixture had higher creep resistance (61% total creep strain under 0.5 MPa) than that formed with unimodal PEG (84%). These hydrogel formulations are promising candidates for minimally invasive tissue repair.
机译:在体温下原位凝胶化的可注射水凝胶制剂有望用于微创组织修复。这项工作的重点是注射聚乙烯醇(PVA)和聚乙二醇(PEG)混合物的研究。随着温度降低至接近人体温度,可注射的PVA-PEG水溶液形成水凝胶,同时填补了注射部位的缺陷。这些溶液的伽马灭菌可能是由于PVA交联而损害了可注射性。我们假设通过改变PEG分子量及其浓度,可以优化辐射灭菌PVA-PEG水凝胶的可注射性,而不会损害所得凝胶的机械性能。使用较高和较低分子量PEG(600和200 g / mol)的双峰混合物会导致较低的PVA / PEG溶液粘度,更好的可注射性和更高的凝胶机械强度。 PVA /双峰-PEG的粘度较低,为2733±149 cP,而PVA /单峰PEG(400 g / mol)的粘度为5560±278 cP。由双峰PEG混合物形成的凝胶具有比由单峰PEG形成的凝胶(84%)更高的抗蠕变性(在0.5 MPa下总蠕变应变为61%)。这些水凝胶制剂有望用于微创组织修复。

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