[1]Dimitriou R, Mataliotakis GI, Angoules AG, et al. Complications following autologous bone graft harvesting from the iliac crest and using the RIA: a systematic review [J]. Injury, 2011, 42:3-15.
[2]Calori G, Mazza E, Colombo M, et al. The use of bonegraft substitutes in large bone defects: any specific needs? [J]. Injury, 2011, 42:56-63.
[3]Holzwarth JM, Ma PX. Biomimetic nanofibrous scaffolds for bone tissue engineering [J]. Biomaterials, 2011, 32(36): 9622-9629.
[4]Lu Q, Zhang B, Li M, et al. Degradation mechanism and control of silk fibroin [J]. Biomacromolecules, 2011, 12(4): 1080-1086.
[5]Anderson JM, Shive MS. Biodegradation and biocompatibility of PLA and PLGA microspheres [J]. Advanced drug delivery reviews, 2012, 64:72-82.
[6]Karageorgiou V, Meinel L, Hofmann S, et al. Bone morphogenetic protein2 decorated silk fibroin films induce osteogenic differentiation of human bone marrow stromal cells [J]. Journal of Biomedical Materials Research Part A, 2004, 71(3): 528-537.
[7]Pritchard EM, Valentin T, Boison D, et al. Incorporation of proteinase inhibitors into silkbased delivery devices for enhanced control of degradation and drug release [J]. Biomaterials, 2011, 32(3): 909-918.
[8]Li C, Vepari C, Jin HJ, et al. Electrospun silkBMP-2 scaffolds for bone tissue engineering [J]. Biomaterials, 2006, 27(16): 3115-3124.
[9]Wang X, Wenk E, Zhang X, et al. Growth factor gradients via microsphere delivery in biopolymer scaffolds for osteochondral tissue engineering [J]. Journal of Controlled Release, 2009, 134(2): 81-90.
[10]Goodship A, Norrodin N, Francis M. The stimulation of prostaglandins synthesis by micromovement in fracture healing [J]. Micromovement in Orthopaedics, 1992, 1:31-34.
[11]Kenwright J, Richardson JB, Cunningham JL, et al. Axial movement and tibial fractures. A controlled randomised trial of treatment [J]. J Bone Joint SurgBr, 1991, 73(4): 654-659.
[12]Yamaji T, Ando K, Wolf S, et al. The effect of micromovement on callus formation [J]. Journal of Orthopaedic Science, 2001, 6(6): 571-575.
[13]Sarmiento A, McKellop HA, Llinas A, et al. Effect of loading and fracture motions on diaphyseal tibial fractures [J]. Journal of Orthopaedic Research, 1996, 14(1): 80-84.
[14]Augat P, Burger J, Schorlemmer S, et al. Shear movement at the fracture site delays healing in a diaphyseal fracture model [J]. Journal of Orthopaedic Research, 2003, 21(6): 1011-1017.
[15]Murphy CM, Haugh MG, O’Brien FJ. The effect of mean pore size on cell attachment, proliferation and migration in collagenglycosaminoglycan scaffolds for bone tissue engineering [J]. Biomaterials, 2010, 313): 461-466.
[16]袁翰, 梁金, 郑欣, 等. 取向蚕丝蛋白支架与间充质干细胞的复合培养 [J]. 实用骨科杂志, 2013, 19(10): 900-903.
[17]Han L, Mao Z, Wu J, et al. Unidirectional migration of single smooth muscle cells under the synergetic effects of gradient swelling cue and parallel groove patterns [J]. Colloids and Surfaces B: Biointerfaces, 2013, 111: 1-6.
[18]Hasirci V, Kenar H. Novel surface patterning approaches for tissue engineering and their effect on cell behavior [J]. 2006, 1(1):73-90.
[19]McMahon RE, Wang L, Skoracki R, et al. Development of nanomaterials for bone repair and regeneration [J]. Journal of Biomedical Materials Research Part B: Applied iomaterials, 2013, 101(2): 387-397.
[20]Gotoh Y, Tsukada M, Minoura N, et al. Synthesis of poly (ethylene glycol)-silk fibroin conjugates and surface interaction between L-929 cells and the conjugates [J]. Biomaterials, 1997, 18(3): 267-271.
[21]Minoura N, Aiba SI, Gotoh Y, et al. Attachment and growth of cultured fibroblast cells on silk protein matrices [J]. Journal of Biomedical Materials Research, 1995, 29(10): 1215-1221.
[22]Horan RL, Antle K, Collette AL, et al. In vitro degradation of silk fibroin [J]. Biomaterials, 2005, 26(17): 3385-3393.
[23]Santin M, Motta A, Freddi G, et al. In vitro evaluation of the inflammatory potential of the silk fibroin [J]. Journal of Biomedical Materials Research, 1999, 46(3): 382-389.
[24]Lee JH, Lee YJ, Cho HJ, et al. Guidance of in vitro migration of human mesenchymal stem cells and in vivo guided bone regeneration using aligned electrospun fibers [J]. Tissue Engineering Part A 2014, 20(15-16): 2031-2042.
[25]Chang JC, Fujita S, Tonami H, et al. Cell orientation and regulation of cellcell communication in human mesenchymal stem cells on different patterns of electrospun fibers [J]. Biomedical Materials, 2013, 8(5): 55002-55014.
[26]Kharaziha M, Fathi MH, Edris H. Development of novel aligned nanofibrous composite membranes for guided bone regeneration [J]. Journal of the Mechanical Behavior of Biomedical Materials, 2013, 24: 9-20.
[27]Rho JY, KuhnSpearing L, Zioupos P. Mechanical properties and the hierarchical structure of bone [J]. Medical Engineering & Physics, 1998, 20(2): 92-102.
|