Min Qing, Wang Congcong, Zhang Yuchen, Tian Danlei, Wan Ying, Wu Jiliang
School of Pharmacy, Hubei University of Science and Technology, Xianning 437100, China.
College of Life Science and Technology, Huazhong University of Science and Technology, Wuhan 430074, China.
Nanomaterials (Basel). 2022 May 30;12(11):1874. doi: 10.3390/nano12111874.
Mesoporous bioactive glass (BG) nanoparticles (NPs) with a high specific surface area were prepared. The surfaces of BG NPs were further modified using an amino-containing compound or synthesized precursors to produce three kinds of amino-functionalized bioactive glass (ABG) NPs via devised synthetic routes. The achieved ABG NPs possessed various spacer lengths with free amino groups anchored at the end of the spacer. These ABG NPs were then combined with glycol chitosan (GCH) to construct single- or dual-crosslinked ABG/GCH composite hydrogels using genipin (GN) alone as a single crosslinker or a combination of GN and poly(ethylene glycol) diglycidyl ether (PEGDE) as dual crosslinkers. The spacer length of ABG NPs was found to impose significant effects on the strength and elasticity of GN-crosslinked ABG/GCH hydrogels. After being dually crosslinked with GN and PEGDE, the elastic modulus of some dual-crosslinked ABG/GCH hydrogels reached around 6.9 kPa or higher with their yielding strains larger than 60%, indicative of their strong and elastic features. The optimally achieved ABG/GCH hydrogels were injectable with tunable gelation time, and also able to support the growth of seeded MC3T3-E1 cells and specific matrix deposition. These results suggest that the dual-crosslinked ABG/GCH hydrogels have the potential for some applications in tissue engineering.
制备了具有高比表面积的介孔生物活性玻璃(BG)纳米颗粒(NPs)。通过设计的合成路线,使用含氨基化合物或合成前体对BG NPs的表面进行进一步修饰,以制备三种氨基功能化生物活性玻璃(ABG)NPs。所制备的ABG NPs具有不同的间隔长度,游离氨基锚定在间隔末端。然后将这些ABG NPs与乙二醇壳聚糖(GCH)结合,使用京尼平(GN)单独作为单一交联剂或GN与聚乙二醇二缩水甘油醚(PEGDE)的组合作为双交联剂,构建单交联或双交联的ABG/GCH复合水凝胶。发现ABG NPs的间隔长度对GN交联的ABG/GCH水凝胶的强度和弹性有显著影响。在用GN和PEGDE进行双交联后,一些双交联的ABG/GCH水凝胶的弹性模量达到约6.9 kPa或更高,其屈服应变大于60%,表明它们具有强而有弹性的特性。优化得到的ABG/GCH水凝胶具有可调节的凝胶化时间,可注射,并且能够支持接种的MC3T3-E1细胞的生长和特定基质的沉积。这些结果表明,双交联的ABG/GCH水凝胶在组织工程中具有一些应用潜力。