Page 30 - IJB-4-1
        P. 30
     Progress in organ 3D bioprinting
              5(4): 632–647. https://doi.org/10.1039/c6bm00861e  65.  Seitza H, Rieder W, Irsen S, et al., 2005, Three-dimensional
           51.  Gudapati H, Dey M, Ozbolat I, 2016, A comprehensive   printing of porous ceramic scaffolds for bone tissue
              review on droplet-based bioprinting: Past, present and   engineering, J Biomed Mater Res B Appl Biomater.74(2):
              future. Biomaterials, 102: 20–42. https://doi.org/10.1016/  782–788. https://doi.org/10.1002/jbm.b.30291
              j.biomaterials.2016.06.012                       66.  Kouhi E, Masood S, Morsi Y, 2008, Design and fabrication
           52.  Mandrycky C, Wang Z, Kim K, Kim D H, 2016, 3D     of reconstructive mandibular models using fused deposition
              bioprinting for engineering complex tissues. Biotechnol Adv,   modeling. Assembly Automation, 28(3): 246–254. https://doi.
              34(4): 422–434. https://doi.org/10.1016/j.biotechadv   org/10.1108/01445150810889501
           53.  Ng W L, Yeong W Y, Naing M W, 2017, Polyvinylpyrrolidone-  67.  Smith C M, Roy T D, Bhalkikar A, et al., 2010, Engineering a
              based bio-ink improves cell viability and homogeneity during   titanium and polycaprolactone construct for a biocompatible
              drop-on-demand printing. Materials, 10(2): 190. https://doi.  interface between the body and artificial limb, Tissue Eng
              org/10.3390/ma10020190                              Part A, 16(2):717–24. https://doi.org/10.1089/ten
           54.  Hall J, 2011, Textbook of Medical Physiology (12th ed).   68.  Lee G S, Park J H, Shin U S, Kim H W, 2011, Direct deposited
              Philadelphia: Elsevier. 957–960.                    porous scaffolds of calcium phosphate cement with alginate for
           55.  Wang X, Ma J, Wang Y, He B, 2001, Structural characterization   drug delivery and bone tissue engineering. Acta Biomater, 7(8):
              of phosphorylated chitosan and their applications as effective   3178–3186. https://doi.org/10.1016/j.actbio.2011.04.008
              additives of calcium phosphate cements. Biomaterials,   69.  Bose S, Roy M, Bandyopadhyay A, 2012, Recent advances in
              22(16): 2247–2255.                                  bone tissue engineering scaffolds. Trends Biotechnol, 30(10):
           56.  Laurin M, Canoville A, Germain D, 2011, Bone microanatomy   546–54. https://doi.org/10.1016/j.tibtech.2012.07.005
              and lifestyle: A descriptive approach. Crpalevol, 10(5): 381–  70.  Wang X, Rijff B L, Khang G, 2015, A building-block
              402. https://doi.org/10.1016/j.crpv.2011.02.003     approach to 3D printing a multi-channel organ regenerative
           57.  Wang X, Ma J, Wang Y, et al., 2001, Progress in the research   scaffold. J Tissue Eng Regen Med, 11(5): 1403–1411. https://
              of bone substitutes. J Biomed Eng, 18(4): 647–652.  doi.org/10.1002/term.2038
           58.  Wang X, 2014, 3D printing of tissue/organ analogues for   71.  Yeong W Y, Chua C K, Leong K F, et al., 2006, Indirect
              regenerative medicine, in: Handbook of Intelligent Scaffolds   fabrication of collagen scaffold based on inkjet printing
              for Regenerative Medicine, G Khang ed, the Second Edition,   technique. Rapid Rrot J, 12(4): 229–237. https://doi.
              Pan Stanford Publishing, 557–570.                   org/10.1108/13552540610682741
           59.  Wang X, Ao Q, Tian X, et al., 2016, 3D bioprinting technologies   72.  Yang S, Leong K F, Du Z,et al., 2002, The design of scaffolds
              for hard tissue and organ engineering. Materials, 9(11): 911.   for use in tissue engineering. Part II. Rapid prototyping
              https://doi.org/10.3390/ma9110911                   techniques. Tissue Eng, 8: 1–11.
           60.  Liu L, Wang X, 2015, Hared tissue and organ manufacturing.   73.  Ricci J L, Clark E A, Murriky A, et al., 2012, Three-
              in Organ Manufacturing, X Wang ed, Nova Science Publishers   dimensional printing of bone repair and replacement
              Inc, New York, 301–333.                             materials: Impact on craniofacial surgery. J Craniofac
           61.  Madison E, 1989, Computers in health care, Englewood, 10:   Surg,  23(1):  304–308.  https://doi.org/10.1097/
              35–38.                                              SCS.0b013e318241dc6e
           62.  Iseri H, Tekkaya A E, Oztan O, et al., 1998, Biomechanical   74.  Kundu J, Shim J H, Jang J, et al., 2013, An additive
              effects of rapid maxillary expansion on the craniofacil skeleton,   manufacturing-based PCL-alginate-chondrocyte bioprinted
              studied by the finite element method. Eur J Orthod, 20 (4):   scaffold for cartilage tissue engineering. J Tissue Eng Regen
              347–356.                                            Med, 9(11): 1286–97. https://doi.org/10.1002/term.1682
           63.  Cheung L K, Wong M C, Wong L I, et al., 2002, Refinement   75.  Langton C M, Whitehead M A, Langton D K, et al., 1997,
              of facial reconstructive surgery by stereo-model planning.   Development of a cancellous bone structural model by stereolith-
              Ann. R. Australas Coll Dent Surg, 16: 29–32.        ography for ultrasound characterisation of the calcaneus. Med
           64.  Ang T H, Sultana F S A, Hutmacher D W, et al., 2002,   Eng Phys, 19(7): 599–604.
              Fabrication of chitosan-hydroxyapatite scaffolds using a   76.  Farzadi A, Hashjin M S, Eydivand M A, et al., 2014, Effect
              robotic dispensing system. Mat Sci Eng C, 20(1): 35–42.   of layer thickness and printing orientation on mechanical
              https://doi.org/10.1016/S0928-4931(02)00010-3       properties and dimensional accuracy of 3D printed porous
           12                          International Journal of Bioprinting (2018)–Volume 4, Issue 1
     	
