Zhang Naiyin, Lock Jaclyn, Sallee Amy, Liu Huinan
Department of Bioengineering, University of California , Riverside, California 92521, United States.
Materials Science and Engineering Program, University of California , Riverside, California 92521, United States.
ACS Appl Mater Interfaces. 2015 Sep 23;7(37):20987-98. doi: 10.1021/acsami.5b06939. Epub 2015 Sep 11.
Hydrogels possess high water content and closely mimic the microenvironment of extracellular matrix. In this study, we created a hybrid hydrogel containing type II collagen, hyaluronic acid (HA), and polyethylene glycol (PEG) and incorporated magnetic nanoparticles into the hybrid hydrogels of type II collagen-HA-PEG to produce a magnetic nanocomposite hydrogel (MagGel) for cartilage tissue engineering. The results showed that both the MagGel and hybrid gel (Gel) were successfully cross-linked and the MagGel responded to an external magnet while maintaining structural integrity. That is, the MagGel could travel to the tissue defect sites in physiological fluids under remote magnetic guidance. The adhesion density of bone marrow derived mesenchymal stem cells (BMSCs) on the MagGel group in vitro was similar to the control group and greater than the Gel group. The morphology of BMSCs was normal and consistent in all groups. We also found that BMSCs engulfed magnetic nanoparticles in culture and the presence of magnetic nanoparticles did not affect BMSC adhesion and morphology. We hypothesized that the ingested nanoparticles may be eventually broken down by lysosome and excreted through exocytosis; further studies are necessary to confirm this. This study reports a promising magnetic responsive nanocomposite hydrogel for potential cartilage tissue engineering applications, which should be further studied for its effects on cell functions when combined with electromagnetic stimulation.
水凝胶具有高含水量,并且能紧密模拟细胞外基质的微环境。在本研究中,我们制备了一种包含II型胶原蛋白、透明质酸(HA)和聚乙二醇(PEG)的混合水凝胶,并将磁性纳米颗粒掺入II型胶原蛋白-HA-PEG混合水凝胶中,以制备用于软骨组织工程的磁性纳米复合水凝胶(MagGel)。结果表明,MagGel和混合凝胶(Gel)均成功交联,并且MagGel在保持结构完整性的同时对外部磁场有响应。也就是说,MagGel能够在远程磁引导下在生理流体中移动到组织缺损部位。体外骨髓间充质干细胞(BMSC)在MagGel组上的黏附密度与对照组相似,且大于Gel组。所有组中BMSC的形态均正常且一致。我们还发现,培养中的BMSC吞噬了磁性纳米颗粒,并且磁性纳米颗粒的存在不影响BMSC的黏附和形态。我们推测摄入的纳米颗粒最终可能会被溶酶体分解并通过胞吐作用排出;需要进一步研究来证实这一点。本研究报道了一种有前景的磁性响应纳米复合水凝胶,可用于潜在的软骨组织工程应用,当与电磁刺激结合时,其对细胞功能的影响有待进一步研究。