[1] Shu W, Liu L, BaoG, et al. Tissue engineering of the temporomandibular joint disc: current status and future trends [J]. The International journal of artificial organs, 2015, 38(2)∶55-68 [2] Navarro M, Michiardi A, Castano O, et al. Biomaterials in orthopaedics [J]. Journal of the Royal Society Interface, 2008, 5(27)∶1137-58 [3] Place ES, Evans ND, Stevens MM, et al. Complexity in biomaterials for tissue engineering [J]. Nature Materials, 2009, 8(6)∶457-470 [4] Huang J, Xiong J, Liu J, et al. Investigation of the In Vitro Degradation of a Novel Polylactide/Nanohydroxyapatite Composite for Artificial Bone [J]. Journal of Nanomaterials, 2013, 2013(8)∶1-10 [5] Liang SL, Yang XY, Fang XY, et al. In vitro enzymatic degradation of poly (glycerol sebacate)-based materials [J]. Biomaterials, 2011, 32 (33)∶8486-96 [6] Huda MS, Mohanty AK, Drzal LT, et al. "Green" composites from recycled cellulose and poly(lactic acid): Physico-mechanical and morphological properties evaluation [J]. Journal of Materials Science, 2005, 40 (16)∶4221-4229 [7] Wang YD, Kim YM, Langer R. In vivo degradation character -istics of poly(glycerol sebacate) [J]. Journal of Biomedical Materials Research Part A, 2003, 66A(1)∶192-197 [8] 胡珂,陈智.自制氢氧化钙糊剂与临床常用根管消毒剂抗菌效果及细胞毒性的实验室性能比较[J].口腔医学研究,2010,26(2)∶204-207 [9] Wright-Charlesworth DD, King JA, Miller DM, et al. In vitro flexural properties of hydroxyapatite and self-reinforced poly- (L-lactic acid) [J]. Journal of Biomedical Materials Research Part A, 2006, 78A(3)∶541-549 [10] Sui G, Yang X, Mei F, et al. Poly-L-lactic acid/hydroxyapatite hybrid membrane for bone tissue regeneration [J]. Journal of Biomedical Materials Research Part A, 2007, 82A(2)∶445-54 [11] 刘全勇,冯予星,丁涛,等.可生物降解聚癸二酸丙三醇酯弹性体的制备及表征[J].合成橡胶工业, 2006, 29(1)∶18-21 [12] Shabani I, Haddadi-Asl V, Seyedjafari E, et al. Improved infiltration of stem cells on electrospun nanofibers [J]. Biochemical and Biophysical Research Communications, 2009, 382(1)∶129-33 [13] Shabani I, Haddadi-Asl V, Seyedjafari E, et al. Cellular infilt- tration on nanofibrous scaffolds using a modified electrospinning technique [J]. Biochemical and Biophysical Research Communicatio- ns, 2012, 423(1)∶50-54 [14] Frydrych M, Roman S, MacNeil S, et al. Biomimetic poly- (glycerol sebacate)/poly(L-lactic acid) blend scaffolds for adipose tissue engineering [J]. Acta biomaterialia, 2015, 18(5)∶40-49 [15] 杨强,祁霁舟,徐宝山.细胞衍生的细胞外基质支架在骨科组织工程的研究进展[J].中国矫形外科杂志,2014,22(14)∶1295-1299 [16] 张涛,武肖娜,尹庆水,等.镁合金对骨髓间充质干细胞增殖及成骨分化的影响研究[J].中国骨科临床与基础研究杂志,2014,6(6)∶99-104 [17] Amornsudthiwat P, Mongkolnavin R, Kanokpanont S, et al. Improvement of early cell adhesion on Thai silk fibroin surface by low energy plasma [J]. Colloids and Surfaces B-Biointerfaces, 2013, 111(21)∶579-586 [18] Fan Z, Zhang F, Liu T, et al. Effect of hyaluronan molecular weight on structure and biocompatibility of silk fibroin/hyaluronan scaffolds [J]. International Journal of Biological Macromolecules, 2014, 65(35)∶516-523 [19] Torricelli P, Gioffre M, Fiorani A, et al. Co-electrospun gelatin-poly(L-lactic acid) scaffolds: modulation of mechanical properties and chondrocyte response as a function of composition [J]. Materials science & engineering C, Materials for biological applications, 2014, 36(6)∶130-138 [20] Ravichandran R, Venugopal JR, Sundarrajan S, et al. Expression of cardiac proteins in neonatal cardiomyocytes on PGS/fibrinogen core/shell substrate for Cardiac tissue engineering [J]. International journal of cardiology, 2013, 167(4)∶1461-1468 |