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P. 188

Page 10 of 12                                         Nelms et al. Plast Aesthet Res 2019;6:21  I  http://dx.doi.org/10.20517/2347-9264.2019.40

               26.   Schlieve T, Hull W, Miloro M, Kolokythas A. Is immediate reconstruction of the mandible with nonvascularized bone graft following
                   resection of benign pathology a viable treatment option? J Oral Maxillofac Surg 2015;73:541-9.
               27.   Albrektsson T, Johansson C. Osteoinduction, osteoconduction and osseointegration. Eur Spine J 2001;10:S96-101.
               28.   Melville JC, Tursun R, Green JM, Marx RE. Reconstruction of a post-traumatic maxillary ridge using a radial forearm free flap and
                   immediate tissue engineering (bone morphogenetic protein, bone marrow aspirate concentrate, and cortical-cancellous bone): case
                   report. J Oral Maxillofac Surg 2017;75:438.e1-6.
               29.   Stevens MM. Biomaterials for bone tissue engineering. Mater Today 2008;11:18-25.
               30.   Roberts TT, Rosenbaum AJ. Bone grafts, bone substitutes and orthobiologics: the bridge between basic science and clinical
                   advancements in fracture healing. Organogenesis 2012;8:114-24.
               31.   Devescovi V, Leonardi E, Ciapetti G, Cenni E. Growth factors in bone repair. Chir Organi Mov 2008;92:161-8.
               32.   Dawson DR, El-Ghannam A, Van Sickels JE, Naung NY. Tissue Engineering: What is New? Dental Clinics 2019;63:433-45.
               33.   Khan SN, Cammisa Jr FP, Sandhu HS, Diwan AD, Girardi FP, et al. The biology of bone grafting. J Am Acad Orthop Surg 2005;13:77-86.
               34.   O’brien FJ. Biomaterials & scaffolds for tissue engineering. Mater Today 2011;14:88-95.
               35.   Tabatabaei FS, Motamedian SR, Gholipour F, Khosraviani K, Khojasteh A. Craniomaxillofacial Bone Engineering by Scaffolds
                   Loaded with Stem Cells: A Systematic Review. J Den Sch 2012;30:113-30.
               36.   Dhandayuthapani B, Yoshida Y, Maekawa T, Kumar DS. Polymeric scaffolds in tissue engineering application: a review. Int J Polym
                   Sci 2011; DOI:10.1155/2011/290602.
               37.   Berthiaume F, Maguire TJ, Yarmush ML. Tissue engineering and regenerative medicine: history, progress, and challenges. Annu Rev
                   Chem Biomol 2011;2:403-30.
               38.   Motamedian SR, Hosseinpour S, Ahsaie MG, Khojasteh A. Smart scaffolds in bone tissue engineering: A systematic review of
                   literature. World J Stem Cells 2015;7:657-68.
               39.   Yu J, Xia H, Ni QQ. A three-dimensional porous hydroxyapatite nanocomposite scaffold with shape memory effect for bone tissue
                   engineering. J Mater Sci 2018;53:4734-44.
               40.   Ghayor C, Weber FE. Osteoconductive microarchitecture of bone substitutes for bone regeneration revisited. Front Physiol 2018;9:960.
               41.   Cornell CN, Lane JM. Current understanding of osteoconduction in bone regeneration. Clin Orthop Relat Res 1998;355:S267-73.
               42.   Ge Z, Jin Z, Cao T. Manufacture of degradable polymeric scaffolds for bone regeneration. Biomed Mater 2008;3:022001.
               43.   Stanton DC, Liu F, Yu JW, Mistretta MC. Use of bioresorbable plating systems in paediatric mandible fractures. J Craniomaxillofac
                   Surg 2014;42:1305-9.
               44.   Park YW. Bioabsorbable osteofixation for orthognathic surgery. Maxillofac Plast Reconstr Surg 2015;37:6.
               45.   Hutmacher DW. Scaffolds in tissue engineering bone and cartilage.In: Williams DF, editor. The Biomaterials: Silver Jubilee
                   Compendium 2000; pp. 175-89.
               46.   Wang X, Xu S, Zhou S, Xu W, Leary M, et al. Topological design and additive manufacturing of porous metals for bone scaffolds and
                   orthopaedic implants: A review. Biomaterials 2016;83:127-41.
               47.   Rho JY, Kuhn-Spearing L, Zioupos P. Mechanical properties and the hierarchical structure of bone. Med Eng Phys 1998;20:92-102.
               48.   Kattimani VS, Kondaka S, Lingamaneni KP. Hydroxyapatite - Past, present, and future in bone regeneration. Bone Tissue Regenerat
                   Insights 2016;7:BTRI-S36138.
               49.   Walmsley GG, Ransom RC, Zielins ER, Leavitt T, Flacco JS, et al. Stem cells in bone regeneration. Stem Cell Rev Rep 2016;12:524-9.
               50.   Baier Leach J, Bivens KA, Patrick Jr CW, Schmidt CE. Photocrosslinked hyaluronic acid hydrogels: natural, biodegradable tissue
                   engineering scaffolds. Biotechnol Bioeng 2003;82:578-89.
               51.   Chevallay B, Herbage D. Collagen-based biomaterials as 3D scaffold for cell cultures: applications for tissue engineering and gene
                   therapy. Med Biol Eng Comput 2000;38:211-8.
               52.   Zhang R, Ma PX. Poly (α-hydroxyl acids)/hydroxyapatite porous composites for bone-tissue engineering. I. Preparation and
                   morphology. J Biomed Mater Res 1999;44:446-55.
               53.   Holzwarth JM, Ma PX. Biomimetic nanofibrous scaffolds for bone tissue engineering. Biomaterials 2011;32:9622-9.
               54.   Seyedjafari E, Soleimani M, Ghaemi N, Shabani I. Nanohydroxyapatite-coated electrospun poly (l-lactide) nanofibers enhance
                   osteogenic differentiation of stem cells and induce ectopic bone formation. Biomacromolecules 2010;11:3118-25.
               55.   Cai YZ, Wang LL, Cai HX, Qi YY, Zou XH, et al. Electrospun nanofibrous matrix improves the regeneration of dense cortical bone. J
                   Biomed Mater Res A 2010;95:49-57.
               56.   Jahan K, Tabrizian M. Composite biopolymers for bone regeneration enhancement in bony defects. Biomater Sci 2015;4: 25-39.
               57.   Herford AS, Lu M, Buxton AN, Kim J, Henkin J, et al. Recombinant Human Bone Morphogenetic Protein 2 Combined With an
                   Osteoconductive Bulking Agent for Mandibular Continuity Defects in Nonhuman Primates. Journal of Oral and Maxillofacial Surgery
                   2012;70:703-16.
               58.   Lindhe J, Cecchinato D, Donati M, Tomasi C, Liljenberg B. Ridge preservation with the use of deproteinized bovine bone mineral.
                   Clin Oral Implants Res 2014;25:786-90.
               59.   Stavropoulos A, Kostopoulos L, Mardas N, Nyengaard JR, Karring T. Deproteinized bovine bone used as an adjunct to guided bone
                   augmentation: an experimental study in the rat. Clin Implant Dent Relat Res 2001;3:156-65.
               60.   Piattelli M, Favero GA, Scarano A, Orsini G, Piattelli A. Bone reactions to anorganic bovine bone (Bio-Oss) used in sinus
                   augmentation procedures: a histologic long-term report of 20 cases in humans. Int J Oral Maxillofac Implants 1999;14:835-40.
               61.   Lopez CD, Diaz-Siso JR, Witek L, Bekisz JM, Cronstein BN, et al. Three dimensionally printed bioactive ceramic scaffold
                   osseoconduction across critical-sized mandibular defects. J Surg Res 2018;223:115-22.
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