[1] Spicer PP, Kretlow JD, Young S, et al. Evaluation of bone regeneration using the rat critical size calvarial defect [J]. Nat Protoc, 2012, 7(10):1918-1929. [2] Lu C, Hansen E, Sapozhnikova A, et al. Effect of age on vascularization during fracture repair [J]. J Orthop Res, 2010, 26(10):1384-1389. [3] Hebb JH, Ashley JW, Mcdaniel L, et al. Bone healing in an aged murine fracture model is characterized by sustained callus inflammation and decreased cell proliferation [J]. J Orthop Res, 2018, 36(1): 149-158. [4] Mengqian L, Manando N, Yu-Ru VS, et al. Effect of age on biomaterial-mediated in situ bone tissue regeneration [J]. Acta Biomater, 2018, 78: 329-340. [5] Razi H, Birkhold AI, Zaslansky P, et al. Skeletal maturity leads to a reduction in the strain magnitudes induced within the bone: A murine tibia study [J]. Acta Biomater, 2015, 13:301-310. [6] Fan R, Gong H, Zhang R, et al. Quantification of age-related tissue-level failure strains of rat femoral cortical bones using an approach combining macrocompressive test and microfinite element analysis [J]. J Biomech Eng, 2016, 138(4):1-13. [7] Aido M, Kerschnitzki M, Hoerth R, et al. Effect of in vivo loading on bone composition varies with animal age [J]. Exp Gerontol, 2015, 63:48-58. [8] Monaco G, van Dam S, Casal Novo Ribeiro JL, et al. A comparison of human and mouse gene co-expression networks reveals conservation and divergence at the tissue, pathway and disease levels [J]. BMC Evol Biol, 2015, 15:259-273. [9] Tarkkonen K, Hieta R, Kytölä Ville, et al. Comparative analysis of osteoblast gene expression profiles and Runx2 genomic occupancy of mouse and human osteoblasts in vitro [J]. Gene, 2017, 626:119-131. [10] Cooper GM, Mooney MP, Gosain AK, et al. Testing the critical size in calvarial bone defects: revisiting the concept of a critical-size defect [J]. Plast Reconstr Surg, 2010, 125(6):1685-1692. [11] Henrich D, Seebach C, Nau C, et al. Establishment and characterization of the Masquelet induced membrane technique in a rat femur critical-sized defect model [J]. J Tissue Eng Regen Med, 2013, 10(10):382-396. [12] Lee DJ, Padilla R, Zhang XH, et al. Biological assessment of a calcium silicate incorporated hydroxyapatite-gelatin nanocomposite: a comparison to decellularized bone matrix [J]. Biomed Res Int, 2014, 2014:837524. [13] Gholipour H, Meimandi-Parizi A, Oryan A, et al. The effects of gelatin, fibrin-platelet glue and their combination on healing of the experimental critical bone defect in a rat model: radiological, histological, scanning ultrastructural and biomechanical evaluation [J]. Cell Tissue Bank, 2017,19(3):341-356. [14] Liu K, Li D, Huang X, et al. A murine femoral segmental defect model for bone tissue engineering using a novel rigid internal fixation system [J].J Surg Res, 2013, 183(2):493-502. [15] Larry P, Matthew K, Jeffrey J, et al. Androgens regulate bone resorption activity of isolated osteoclasts in vitro [J]. Proc Natl Acad Sci U S A, 1999, 96(2): 505-510. [16] Yao X, Carleton SM, Kettle AD, et al. Gender-dependence of bone structure and properties in adult osteogenesis imperfecta murine model [J]. Ann Biomed Eng, 2013, 41(6):1139-1149. [17] Mehta M, Schell H, Schwarz C, et al. A 5-mm femoral defect in female but not in male rats leads to a reproducible atrophic non-union [J]. Arch Orthop Trauma Surg, 2011, 131(1):121-129. [18] Viniegra A, Goldberg H, Çil Ç, et al. Resolving macrophages counter osteolysis by anabolic actions on bone cells [J]. J Dent Res, 2018, 97(10):1160-1169. [19] Mödinger Y, Löffler B, Huber-Lang M, et al. Complement involvement in bone homeostasis and bone disorders [J]. Semin Immunol, 2018, 37:53-65. [20] Chen WF, Scollay R, Shortman K, et al. T-cell development in the absence of a thymus: the number, the phenotype, and the functional capacity of T lymphocytes in nude mice [J]. Am J Anat, 2010, 170(3):339-347. [21] 万江波,蔡黔,刘毅.骨髓间充质干细胞不同移植方式治疗大鼠糖尿病足溃疡的疗效观察[J].中南大学学报(医学版), 2013, 38(4): 347-355. [22] Ma D, Yao H, Tian W, et al. Enhancing bone formation by transplantation of a scaffold-free tissue-engineered periosteum in a rabbit model [J]. Clin Oral Implants Res, 2011, 22(10):1193-1199. [23] Davis EL, Sonnet C, Lazard ZW, et al. Location-dependent heterotopic ossification in the rat model: The role of activated matrix metalloproteinase 9 [J]. J Orthop Res, 2016, 34(11):1894-1904. [24] Xu Ri, Khan SK, Zhou T, et al. Gαs signaling controls intramembranous ossification during cranial bone development by regulating both Hedgehog and Wnt/β-catenin signaling [J]. Bone Res, 2018, 6:33-48. [25] Petersen A, Princ A, Korus G, et al. A biomaterial with a channel-like pore architecture induces endochondral healing of bone defects [J]. Nat Commun,2018,9(1):4430-4446. [26] Carroll SF, Buckley CT, Kelly DJ. Cyclic tensile strain can play a role in directing both intramembranous and endochondral ossification of mesenchymal stem cells [J]. Front Bioeng Biotechnol, 2017, 5:73-85. [27] Koehne T, Kahl-Nieke B, Amling M, et al. Inhibition of bone resorption by bisphosphonates interferes with orthodontically induced midpalatal suture expansion in mice [J]. Clin Oral Investig, 2018, 22(6):2345-2351. [28] 张洪洋,杨柳,韩跃虎,等.分别构建膜内成骨和软骨内成骨骨修复模型的研究[J].中国矫形外科杂志,2014,22(24):2264-2268. [29] Schmitz JP, Hollinger JO. The critical size defect as an experimental model for craniomandibulofacial nonunions [J]. Clin Orthop Relat Res,1986,(205):299-308. |