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新型可注射水凝胶用于髓核置换的评估

Evaluation of novel injectable hydrogels for nucleus pulposus replacement.

作者信息

Vernengo J, Fussell G W, Smith N G, Lowman A M

机构信息

Department of Chemical and Biological Engineering, Biomaterials and Drug Delivery Laboratory, Drexel University. Philadelphia, Pennsylvania 19104, USA.

出版信息

J Biomed Mater Res B Appl Biomater. 2008 Jan;84(1):64-9. doi: 10.1002/jbm.b.30844.

Abstract

Branched copolymers composed of poly(N-isopropylacrylamide) (PNIPAAm) and poly(ethylene glycol) (PEG) are being investigated as an in situ forming replacement for the nucleus pulposus of the intervertebral disc. A family of copolymers was synthesized by varying the molecular weight of the PEG blocks and molar ratio of NIPAAm monomer units to PEG branches. Gel swelling, dissolution, and compressive mechanical properties were characterized over 90 days and stress relaxation behavior over 30 days immersion in vitro. It was found that the NIPAAm to PEG molar ratio did not affect the equilibrium swelling and compressive mechanical properties. However, gel elasticity exhibited a dependency on both the PEG block molecular weight and content. The equilibrium gel water content increased and compressive modulus decreased with increasing PEG block size. While all of the branched copolymers showed significant increases in stress relaxation time constant compared to the homopolymer (p < 0.05), the high PEG content PNIPAAm-PEG (4600 and 8000 g/mol) exhibited the maximum elasticity. Because of its high water content, requisite stiffness and high elastic response, PNIPAAm-PEG (4600 g/mol) will be further evaluated as a candidate material for nucleus pulposus replacement.

摘要

由聚(N-异丙基丙烯酰胺)(PNIPAAm)和聚(乙二醇)(PEG)组成的支化共聚物正在作为椎间盘髓核的原位形成替代物进行研究。通过改变PEG嵌段的分子量以及NIPAAm单体单元与PEG支链的摩尔比,合成了一系列共聚物。在90天内对凝胶的溶胀、溶解和压缩力学性能进行了表征,并在体外浸泡30天内对其应力松弛行为进行了表征。结果发现,NIPAAm与PEG的摩尔比不影响平衡溶胀和压缩力学性能。然而,凝胶弹性对PEG嵌段分子量和含量均有依赖性。随着PEG嵌段尺寸的增加,平衡凝胶含水量增加,压缩模量降低。虽然与均聚物相比,所有支化共聚物的应力松弛时间常数均显著增加(p < 0.05),但高PEG含量的PNIPAAm-PEG(4600和8000 g/mol)表现出最大弹性。由于其高含水量、所需的刚度和高弹性响应,PNIPAAm-PEG(4600 g/mol)将作为髓核替代的候选材料进行进一步评估。

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