Department of Orthopedics, the First Affiliated Hospital, School of Medicine, Zhejiang University, NO. 79 Qingchun Road, Hangzhou, Zhejiang, China.
School of Chemistry and Chemical Engineering & the Key Laboratory of Environment-friendly Polymer Materials of Anhui Province, Anhui University, NO. 111 Jiu Long Road, Hefei, China.
Sci Rep. 2017 May 24;7(1):2347. doi: 10.1038/s41598-017-02497-3.
In spinal degenerative disease, an injectable liquid hydrogel can fill in defect entirely, lessen the danger of implant relocation and following loss of disc height, minimizing the operative trauma. Here, we propose an injectable in-situ chemically cross-linked hydrogel by a two-component reaction of liquid silk fibroin with liquid polyurethane at physiological temperature conditions. Confined compression tests and fatigue tests were reported to assess physical properties of the hydrogel. Impact of different diameter on the biomechanical behaviours was tested to evaluate the clinical potentiality of the hydrogel for replacing nucleus pulposus. Degradation behaviours in different solutions and animal experiments were also investigated to examine the tissue biocompatibility of the hydrogel. The hydrogel modulus was affected by the hydrogel geometrical (diameter) parameters. SF/PU composite hydrogel can survive a million cycles, unconstrained fatigue resistance. More importantly, in vivo biocompatibility using New Zealand white rabbits, showed good biocompatibility over a three-month period in culture. Particularly, they showed the significant clinical merit of providing stronger axial compressive stiffness on confined compression test. Based on the outcomes of the present research, the SF/PU composite hydrogel may provide significant advantages for use in future clinical application in replacing nucleus pulposus field.
在脊柱退行性疾病中,可注射的液体水凝胶可以完全填补缺损,减少植入物移位和随后的椎间盘高度丢失的危险,将手术创伤降到最低。在这里,我们提出了一种可注射的原位化学交联水凝胶,它是通过在生理温度条件下将液态丝素蛋白与液态聚氨酯进行双组分反应得到的。报道了压缩试验和疲劳试验来评估水凝胶的物理性能。测试了不同直径对生物力学行为的影响,以评估水凝胶替代髓核的临床潜力。还研究了在不同溶液中的降解行为和动物实验,以检查水凝胶的组织生物相容性。水凝胶的模量受到水凝胶几何(直径)参数的影响。SF/PU 复合水凝胶可以承受一百万次无约束疲劳试验。更重要的是,在新西兰白兔体内的生物相容性实验表明,在培养过程中三个月内具有良好的生物相容性。特别地,它们在受限压缩试验中提供了更强的轴向压缩刚度,显示出显著的临床优势。基于本研究的结果,SF/PU 复合水凝胶可能在未来的临床应用中为替代髓核领域提供显著优势。