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Compressive strengths of PEG gels with glycerol and bioglass particles

机译:PEG凝胶与甘油和生物玻璃颗粒的抗压强度

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摘要

Poly(ethylene glycol) (PEG)-based materials can potentially be used as biomechanical matrices in regenerative medicine and tissue engineering implants including the replacement of intervertebral (IV) disks. Glycerol and other generally recognized as safe (GRAS) plasticizers (low-MW PEG, propylene glycol, and sorbitol) were added to the bulk PEG matrix and gelled using chemical and photochemical methods at different temperatures (21, 37, 59, and 80 degrees C) and pressures (0 and 90 MPa gauge) settings, and their compression testing properties were acquired and analyzed. Surface incorporation of custom-made bioactive glass particles shortened the blood clotting time (78% compared to no glass particles), while alginate and laponite additives improved the gel's mechanical properties to 645 kPa compressive modulus, 12% yield strain, and 79 kPa yield strength. This IV disk-modeled hydrogel system endured the cyclic loading and unloading tests at 4% compressive strain indicative of an elastic response, but required improvement to its biomechanical tolerance for downstream bioengineering applications.
机译:基于聚乙二醇(PEG)的材料可以潜在地用作再生医学和组织工程植入物中的生物力学基质,包括椎间盘(IV)盘的更换。将甘油和其他公认的安全(GRAS)增塑剂(低分子量PEG,丙二醇和山梨糖醇)添加到PEG本体中,并使用化学和光化学方法在不同温度(21、37、59和80度)下凝胶化C)和压力(0和90 MPa表压)设置,以及它们的压缩测试特性已获得并进行了分析。定制生物活性玻璃颗粒的表面掺入缩短了血液凝固时间(与无玻璃颗粒相比,缩短了78%),而藻酸盐和皂石添加剂将凝胶的机械性能提高到645 kPa压缩模量,12%屈服应变和79 kPa屈服强度。这种IV盘模型水凝胶系统在表明弹性响应的4%压缩应变下经受了循环加载和卸载测试,但需要改善其对下游生物工程应用的生物力学耐受性。

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