Page 69 - IJB-7-2
P. 69

Ng, et al.
               3D Bioprinting of Nanoreinforced Hybrid Cardiac Patch for   printing of Human Skin with Functional Transwell System.
               Myocardial Tissue Engineering. Tissue Eng Part C Methods,   Biofabrication, 9:025034.
               24:74–88.                                           https://doi.org/10.1088/1758-5090/aa71c8
               https://doi.org/10.1089/ten.tec.2017.0346       36.  Ng WL, Tan ZQ, Yeong WY, et al., 2018, Proof-of-concept:
           25.  You F, Chen  X, Cooper  D,  et  al., 2018, Homogeneous   3D Bioprinting  of Pigmented  Human Skin Constructs.
               Hydroxyapatite/Alginate  Composite Hydrogel Promotes   Biofabrication, 10:025005.
               Calcified  Cartilage  Matrix  Deposition  with  Potential  for   https://doi.org/10.1088/1758-5090/aa9e1e
               Three-dimensional Bioprinting. Biofabrication, 11:015015.  37.  Ng WL, Yeong WY, 2019, The Future of Skin Toxicology
               https://doi.org/10.1088/1758-5090/aaf44a            Testing 3D Bioprinting Meets Microfluidics. Int J Bioprint,
           26.  Nguyen  D, Hägg D, Forsman  A, et  al., 2017,  Cartilage   5:237.
               Tissue Engineering by the 3D Bioprinting of iPS Cells in a   https://doi.org/10.18063/ijb.v5i2.1.237
               Nanocellulose/Alginate Bioink. Sci Rep, 7:658.  38.  Kathawala  MH, Ng  WL,  Liu  D, et  al., 2019, Healing  of
               https://doi.org/10.1038/s41598-017-00690-y          Chronic  Wounds an Update of Recent  Developments  and
           27.  Izadifar  Z,  Chang  T, Kulyk  W,  et  al.,  2016, Analyzing   Future Possibilities. Tissue Eng Part B Rev, 25:429–44.
               Biological  Performance  of  3D-Printed,  Cell-impregnated   https://doi.org/10.1089/ten.teb.2019.0019
               Hybrid Constructs for Cartilage Tissue Engineering. Tissue   39.  Zhuang P, Ng  WL,  An  J,  et al., 2019, Layer-by-layer
               Eng Part C Methods, 22;173–88.                      Ultraviolet Assisted Extrusion-Based (UAE) Bioprinting of
               https://doi.org/10.1089/ten.tec.2015.0307           Hydrogel Constructs with High Aspect Ratio for Soft Tissue
           28.  Norona LM, Nguyen DG, Gerber DA, et al., 2019, Bioprinted   Engineering Applications. PLoS One, 14:e0216776.
               Liver Provides Early Insight into the Role of Kupffer Cells in   https://doi.org/10.1371/journal.pone.0216776
               TGF-β1 and Methotrexate-induced Fibrogenesis. PloS One,   40.  Ozbolat IT, Hospodiuk M, 2016, Current Advances and Future
               14:e0208958.                                        Perspectives in Extrusion-based  Bioprinting.  Biomaterials,
               https://doi.org/10.1371/journal.pone.0208958        76:321–43.
           29.  Nguyen  DG, Funk J, Robbins JB, et  al., 2016, Bioprinted   https://doi.org/10.1016/j.biomaterials.2015.10.076
               3D Primary Liver Tissues Allow Assessment of Organ-level   41.  Ng  WL,  Yeong  WY, Naing MW, 2016, Development
               Response to Clinical Drug Induced Toxicity In Vitro. PloS   of Polyelectrolyte  Chitosan-gelatin  Hydrogels for Skin
               One, 11:e0158674.                                   Bioprinting. Procedia CIRP, 49:105–12.
               https://doi.org/10.1371/journal.pone.0158674        https://doi.org/10.1016/j.procir.2015.09.002
           30.  Mazzocchi  A, Devarasetty M, Huntwork R,  et al., 2018,   42.  Ng  WL,  Yeong  WY, Naing MW, 2016, Polyelectrolyte
               Optimization of Collagen Type I-hyaluronan Hybrid Bioink   Gelatin-chitosan Hydrogel Optimized for 3D Bioprinting in
               for 3D Bioprinted Liver Microenvironments. Biofabrication,   Skin Tissue Engineering. Int J Bioprint, 2:53–62.
               11:015003.                                          https://doi.org/10.18063/ijb.2016.01.009
               https://doi.org/10.1088/1758-5090/aae543        43.  Ng  WL,  Yeong  WY, Naing MW, 2014, Potential  of
           31.  Horváth L, Umehara  Y, Jud C,  et al., 2015, Engineering   Bioprinted Films for Skin Tissue Engineering. Proceedings
               an In Vitro Air-blood Barrier by 3D Bioprinting. Sci Rep, 5:7974  of the 1  International Conference on Progress in Additive
                                                                         st
               https://doi.org/10.1038/srep07974                   Manufacturing, pp. 441–6.
           32.  Park JY, Ryu H, Lee B, et al., Development of a Functional   https://doi.org/10.3850/978-981-09-0446-3_065
               Airway-on-a-chip  by 3D Cell  Printing.  Biofabrication,   44.  Gudupati  H, Dey M, Ozbolat I, 2016,  A Comprehensive
               11:015002.                                          Review on Droplet-based Bioprinting: Past, Present and
           33.  Ng WL, Wang S, Yeong WY, et al., 2016, Skin Bioprinting:   Future. Biomaterials, 102:20–42.
               Impending Reality or Fantasy? Trends Biotechnol, 34:689–99.  https://doi.org/10.1016/j.biomaterials.2016.06.012
               https://doi.org/10.1016/j.tibtech.2016.08.009   45.  Ng WL, Lee JM, Yeong WY, et al., 2017, Microvalve-based
           34.  Cubo N, Garcia M, del Cañizo JE, et al., 2016, 3D Bioprinting   Bioprinting  Process, Bio-inks and  Applications.  Biomater
               of Functional Human Skin: Production and In Vivo Analysis.   Sci, 5:632–47.
               Biofabrication, 9:015006.                           https://doi.org/10.1039/c6bm00861e
               https://doi.org/10.1088/1758-5090/9/1/015006    46.  Ng  WL,  Yeong  WY, Naing  MW,  2016, Microvalve
           35.  Kim BS, Lee  JS, Gao G,  et  al., 2017, Direct  3D Cell-  Bioprinting of Cellular Droplets with High Resolution and

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