Song Yang, Zhang Chi, Wang Ping, Wang Lin, Bao Chunyun, Weir Michael D, Reynolds Mark A, Ren Ke, Zhao Liang, Xu Hockin H K
Department of Prosthodontics, Guanghua School of Stomatology, Guangdong Provincial Key Laboratory of Stomatology, Sun Yat-sen University, Guangzhou, Guangdong, China; Department of Endodontics, Periodontics and Prosthodontics, University of Maryland School of Dentistry, Baltimore, MD 21201, USA.
State Key Laboratory of Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu, Sichuan 610041, China; Department of Endodontics, Periodontics and Prosthodontics, University of Maryland School of Dentistry, Baltimore, MD 21201, USA.
Mater Sci Eng C Mater Biol Appl. 2017 Jun 1;75:895-905. doi: 10.1016/j.msec.2017.02.158. Epub 2017 Mar 1.
Cell-based tissue engineering is promising to create living functional tissues for bone regeneration. The implanted cells should be evenly distributed in the scaffold, be fast-released to the defect and maintain high viability in order to actively participate in the regenerative process. Herein, we report an injectable calcium phosphate cement (CPC) scaffold containing cell-encapsulating hydrogel microfibers with desirable degradability that could deliver cells in a timely manner and maintain cell viability. Microfibers were synthesized using partially-oxidized alginate with various concentrations (0-0.8%) of fibrinogen to optimize the degradation rate of the alginate-fibrin microfibers (Alg-Fb MF). A fibrin concentration of 0.4% in Alg-Fb MF resulted in the greatest enhancement of cell migration, release and proliferation. Interestingly, a significant amount of cell-cell contact along the long-axis of the microfibers was established in Alg-0.4%Fb MF as early as day 2. The injectable tissue engineered construct for bone reconstruct was fabricated by mixing the fast-degradable Alg-0.4%Fb MF with CPC paste at 1:1 volume ratio. In vitro study showed that cells re-collected from the construct maintained good viability and osteogenic potentials. In vivo study demonstrated that the hBMSC-encapsulated CPC-MF tissue engineered construct displayed a robust capacity for bone regeneration. At 12weeks after implantation, osseous bridge in the rat mandibular defect was observed in CPC-MF-hBMSCs group with a new bone area fraction of (42.1±7.8) % in the defects, which was >3-fold that of the control group. The novel tissue-engineered construct presents an excellent prospect for a wide range of dental, craniofacial and orthopedic applications.
基于细胞的组织工程有望制造出用于骨再生的具有生物活性的功能性组织。植入的细胞应均匀分布在支架中,快速释放到缺损部位并保持高活力,以便积极参与再生过程。在此,我们报道了一种可注射的磷酸钙骨水泥(CPC)支架,其包含具有理想降解性的细胞封装水凝胶微纤维,能够及时递送细胞并维持细胞活力。使用含有不同浓度(0 - 0.8%)纤维蛋白原的部分氧化海藻酸盐合成微纤维,以优化海藻酸盐 - 纤维蛋白微纤维(Alg - Fb MF)的降解速率。Alg - Fb MF中纤维蛋白浓度为0.4%时,对细胞迁移、释放和增殖的促进作用最大。有趣的是,早在第2天,Alg - 0.4%Fb MF中就沿着微纤维的长轴建立了大量的细胞 - 细胞接触。通过将快速降解的Alg - 0.4%Fb MF与CPC糊剂按1:1体积比混合,制备了用于骨重建的可注射组织工程构建体。体外研究表明,从构建体中重新收集的细胞保持了良好的活力和成骨潜能。体内研究表明,封装人骨髓间充质干细胞(hBMSC)的CPC - MF组织工程构建体显示出强大的骨再生能力。植入后12周,在CPC - MF - hBMSCs组的大鼠下颌骨缺损处观察到骨桥,缺损处新骨面积分数为(42.1±7.8)%,是对照组的3倍以上。这种新型组织工程构建体在广泛的牙科、颅面和骨科应用中展现出了极好的前景。