Research trends in biomimetic medical materials for tissue engineering : 3D bioprinting, surface modification, nano/micro-technology and clinical aspects in tissue engineering of cartilage and bone
1Bio-X Center, College of Life Sciences, Zhejiang Sci-Tech University
2Seoul National University of Science and Technology
3Department of Mechanical System Design Engineering, Seoul National University of Science and Technology
4Department of Orthopaedic Surgery, Seoul National University College of Medicine/Seoul National University Hospital
5Institute of Natural Sciences, Yonsei University
6Advanced Biomaterials and Tissue Engineering Center, Huazhong University of Science and Technology
7Department of Chemical and Biomolecular Engineering, Seoul National University of Science and Technology
원문보기
조회
상세조회 5건
Abstract
This review discusses about biomimetic medical materials for tissue engineering of bone and cartilage, after previous scientific commentary of the invitation-based, Korea-China joint symposium on biomimetic medical materials, which was held in Seoul, Korea, from October 22 to 26, 2015. The contents of this review were evolved from the presentations of that symposium. Four topics of biomimetic medical materials were discussed from different research groups here: 1) 3D bioprinting medical materials, 2) nano/micro-technology, 3) surface modification of biomaterials for their interactions with cells and 4) clinical aspects of biomaterials for cartilage focusing on cells, scaffolds and cytokines.
3. Haugh MG, Murphy CM, O'Brien FJ. Novel freeze-drying methods to produce a range of collagen-glycosaminoglycan scaffolds with tailored mean pore sizes. Tissue Eng Part C Methods. 2010;16(5):887-94.
4. Jo S, Kim S, Noh I. Synthesis of in situ chondroitin sulfate hydrogel through phosphine-mediated Michael type addition reaction. Macromol Res. 2012;20:968-76.
6. Lee KBL, Hui JHP, Song IC, Ardany L, Lee EH. Injectable mesenchymal stem cell therapy for large cartilage defects-A porcine model. Stem Cells. 2007;25:2964-71.
8. Balogun VA, Kirkwood ND, Mativenga PT. A review on powder bed fusion direct electrical energy demand in fused deposition modelling. Procedia CIRP. 2014;15:38-43.
9. Lee KW, Wang S, Fox BC, Ritman EL, Yaszemski MJ, Lu L. Poly(propylene fumarate) bone tissue engineering scaffold fabrication using stereolithography: Effects of resin formulations and laser parameters. Biomacromolecules. 2007;8(4):1077-84.
11. Smyth PA, Green I, Jackson RL, Hanson RM. Biomimetic model of articular cartilage based on in vitro experiments. J Biomimetics Biomaterials Biomed Eng. 2014;21:75-91.
13. Almeida CR, Serra T, Oliveira MI, Planell JA, Barbosa MA, Navarro M. Impact of 3-D printed PLA- and chitosan-based scaffolds on human monocyte/ macrophage responses: Unraveling the effect of 3-D structures on inflammation. Acta Biomater. 2014;10(2):613-22. 13.
14. Inzana JA, Olvera D, Fuller SM, Kelly JP, Graeve OA, Schwarz EM, Kates SL, Awad HA. 3D printing of composite calcium phosphate and collagen scaffolds for bone regeneration. Biomaterials. 2014;35(13):4026-34.
15. Xu F, Celli J, Rizvi I, Moon SJ, Hasan T, Demirci U. A three-dimensional in vitro ovarian cancer co-culture model using a high-throughput cell patterning platform. Biotechnol J. 2011;6(2):204-12.
16. Serra T, Ortiz-Hernandez M, Elisabeth Engel E, Planell JA, Navarro M. Relevance of PEG in PLA-based blends for tissue engineering 3D-printed scaffolds. Mater Sci and Eng: C. 2014;38:55-62.
17. Park HS, Lee SY, Yoon HS, Noh I. Biological evaluation of micro-patterned hyaluronic acid hydrogel for bone tissue engineering. Pure and Applied Chem. 2014;86:1911-22.
18. Fjserholm F, Stegmayr J, Bauer P, Johansson F, Wallman L, Bengtsson M, Oredsson S. Biocompatibility of a polymer based on off-stoichiometry thiolenes + expoxy (OSTE+) for neural implants. Biomater Res. 2015;19:174-83.
19. Choi SC, Yoo MA, Lee SY, Lee HJ, Son DH, Jung J, Noh I, Kim CW. Modulation of biomechanical properties of hyaluronic acid hydrogels by crosslinking agents. J Biomed Mater Res Part A. 2015;103(9):3072-80.
20. Jo S, Kim S, Cho TH, Shin E, Hwang SJ, Noh I. Effects of recombinant human bone morphogenic protein-2 and human bone marrow-derived stromal cells on in vivo bone regeneration of chitosan-poly(ethylene oxide) hydrogel. J Biomed Mater Res Part A. 2013;101A(3):892-901.
21. Subbiah R, Suhaeri M, Hwang MP, Kim W, Park K. Investigation of the changes of biophysical/mechanical characteristics of differentiating preosteoblasts in vitro. Biomater Res. 2015;19:24.
22. Kim DH, Hwang KH, Lee JD, Park HC, Yoon SY. Long and short range order structural analysis of in-situ formed biphasic calcium phosphates. Biomater Res. 2015;19:14.
23. Buyukhatipoglu K, Jo W, Sun W, Clyne AM. The role of printing parameters and scaffold biopolymer properties in the efficacy of a new hybrid nanobioprinting system. Biofabrication. 2009;1(3):035003.
24. Tarafder S, Bose S. Polycaprolactone-coated 3D printed tricalcium phosphate scaffolds for bone tissue engineering: in vitro alendronate release behavior and local delivery effect on in vivo osteogenesis. ACS Appl Mater Interfaces. 2014;6(13):9955-65.
28. Liu W, L Y, Liu J, Niu X, Wang Y, Li D. Application and performance of 3D printing in nanobiomaterials, J. Nanomaterials. 2013;681050:7. http://dx.doi. org/10.1155/2013/681050.
29. Gao C, Deng Y, Feng P, Mao Z, Li P, Yang B, Deng J, Cao Y, Shuai C, Peng S. Current progress in bioactive ceramic scaffolds for bone repair and regeneration. Int J Mol Sci. 2014;15(3):4714-32.
31. Mohanty S, Larsen LB, Trifol J, Szabo P, Burri HVR, Canali C, Dufva M, Emnéus J, Wolff A. Fabrication of scalable and structured tissue engineering scaffolds using water dissolvable sacrificial 3D printed molds. Mater Sci and Eng C. 2015;55:569-78.
32. Naveena N, Venugopal J, Rajeswari R, Sundarrajan S, Sridhar R, Shayanti M, et al. Biomimetic composites and stem cells interaction for bone and cartilage tissue regeneration. J Mater Chem. 2012;22:5239-53.
33. Tseng AA, Chen K, Chen CD, Ma KJ. Electron beam lithography in nanoscale fabrication: recent development. IEEE Trans Electron Packag Manuf. 2003;26(2):141-9.
36. Xu H, Li H, Chang J. Controlled drug release from a polymer matrix by patterned electrospun nanofibers with controllable hydrophobicity. J Mater Chem B. 2013;1:4182-8.
37. Zhang M, Sun S, Yu X, Cao X, Zou Y, Yi T. Formation of a large-scale ordered honeycomb pattern by an organogelator via a self-assembly process. Chem Commun. 2010;46:3553-5.
41. Kim SO, Solak HH, Stoykovich MP, Ferrier NJ, de Pablo JJ, Nealey PF. Epitaxial self-assembly of block copolymers on lithographically defined nanopatterned substrates. Nature. 2003;424(6947):411-4.
42. Neves NM, Campos R, Pedro A, Cunha J, Macedo F, Reis RL. Patterning of polymer nanofiber meshes by electrospinning for biomedical applications. Int J Nanomed. 2007;2(3):433-48.
43. Kim HN, Kang DH, Kim MS, Jiao A, Kim DH, Suh KY. Patterning Methods for Polymers in Cell and Tissue Engineering. Annals of Biomed Eng. 2012;40(6):1339-55.
44. Lima AC, Mano JF. Micro/nano-structured superhydrophobic surfaces in the biomedical field: part I: basic concepts and biomimetic approaches. Nanomedicine. 2015;10(1):103-19.
45. Lima AC, Mano JF. Micro/nano-structured superhydrophobic surfaces in the biomedical field: part II: applications overview. Nanomedicine. 2015;10(2):271-97.
46. Kyle DJT, Oikonomou A, Hill E, Bayat A. Development and functional evaluation of biomimetic silicone surfaces with hierarchical micro/nanotopographical features demonstrates favourable in vitro foreign body response of breast-derived fibroblasts. Biomaterials. 2015;52:88-102.
48. Andrews HG, Badyal JPS. Bioinspired hook surfaces based upon a ubiquitous weed (Galium aparine) for dry adhesion. J Adhesion Sci and Tech. 2014;28(13):1243-55.
49. Liang J, Song R, Huang Q, Yang Y, Lin L, Zhang Y, Jiang P, Duan H, Dong X, Lin C. Electrochemical construction of a bio-inspired micro/nano-textured structure with cell-sized microhole arrays on biomedical titanium to enhance bioactivity. Electrochim Acta. 2015;174:1149-59.
50. Armentano I, Bitinis N, Fortunati E, Mattioli S, Rescignano N, Verdejo R, LopezManchado MA, Kenny JM. Multifunctional nanostructured PLA materials for packaging and tissue engineering. Progress in Polym Sci. 2013;38:1720-47.
55. Qiu Z-Y, Chen C, Wang X-M, Lee IS. Advances in the surface modification techniques of bone-related implants for last 10 years. Regen Biomater. 2014;1:67-79.
58. Tanase C, Sartoris A, Popa M, Verestiuc L, Unger R, Kirkpatrick C. In vitro evaluation of biomimetic chitosan-calcium phosphate scaffolds with potential application in bone tissue engineering. Biomed Mater. 2013;8:025002.
62. Kango S, Kalia S, Celli A, Njuguna J, Habibi Y, Kumar R. Surface modification of inorganic nanoparticles for development of organic-inorganic nanocomposites-A review. Progress in Polymer Sci. 2013;38:1232-61.
67. Sangeetha K, Thamizhavel A, Girija E. Effect of gelatin on the in situ formation of Alginate/Hydroxyapatite nanocomposite. Mater Lett. 2013;91:27-30.
69. Ma J, Wang J, Ai X, Zhang S. Biomimetic self-assembly of apatite hybrid materials: from a single molecular template to bi-/multi-molecular templates. Biotech Adv. 2014;32:744-60.
70. Wang J, Zhou W, Hu W, Zhou L, Wang S, Zhang S. Collagen/silk fibroin bi‐template induced biomimetic bone‐like substitutes. J Biomed Mater Res Part A. 2011;99:327-34.
71. Tari NE, Motlagh MMK, Sohrabi B. Synthesis of hydroxyapatite particles in catanionic mixed surfactants template. Mater Chem and Phy. 2011;131:132-5.
72. Brittberg M, Lindahl A, Nilsson A, Ohlsson C, Isaksson O, Peterson L. Treatment of deep cartilage defects in the knee with autologous chondrocyte transplantation. N Engl J Med. 1994;331:889-95.
74. Knutsen G, Engebretsen L, Ludvigsen TC, Drogset JO, Grontvedt T, Solheim E, Strand T, Roberts S, Isaksen V, Johansen O. Autologous chondrocyte implantation compared with microfracture in the knee. A randomized trial. Bone Joint Surg Am. 2004;86-A:455-64.
77. Choi WH, Kim HR, Lee SJ, Jeong N, Park SR, Choi BH, Min BH. Fetal cartilagederived cells have stem cell properties and are a highly potent cell source for cartilage regeneration. Cell Transplant 2015. [Epub ahead of print].
78. Williams SK, Amiel D, Ball ST, Allen RT, Tontz Jr WL, Emmerson BC, Badlani NM, Emery SC, Haghighi P, Bugbee WD. Analysis of cartilage tissue on a cellular level in fresh osteochondral allograft retrievals. Am J Sports Med. 2007;35:2022-32.
79. Steadman JR, Rodkey WG, Briggs KK, Rodrigo JJ. The microfracture technic in the management of complete cartilage defects in the knee joint. Orthopad. 1999;28:26-32.
80. Gobbi A, Karnatzikos G, Kumar A. Long-term results after microfracture treatment for full-thickness knee chondral lesions in athletes. Knee Surg Sports Traumatol Arthrosc. 2014;22:1986-96.
81. Negrin LL, Vecsei V. Do meta-analyses reveal time-dependent differences between the clinical outcomes achieved by microfracture and autologous chondrocyte implantation in the treatment of cartilage defects of the knee? J Orthop Sci. 2013;18:940-8.
82. Anders S, Volz M, Frick H, Gellissen JA. Randomized controlled trial comparing autologous matrix-induced chondrogenesis (AMIC(R)) to microfracture: Analysis of 1- and 2-year follow-up data of 2 centers. Open Orthop J. 2013;7:133-43.
84. Oussedik S, Tsitskaris K, Parker D. Treatment of articular cartilage lesions of the knee by microfracture or autologous chondrocyte implantation: a systematic review. Arthroscopy. 2015;31:732-44.
86. Huang H, Zhang X, Hu X, Shao Z, Zhu J, Dai L, Man Z, Yuan L, Chen H, Zhou C, Ao Y. A functional biphasic biomaterial homing mesenchymal stem cells for in vivo cartilage regeneration. Biomaterials. 2014;35:9608-19.
87. Lee CH, Cook JL, Mendelson A, Moioli EK, Yao H, Mao JJ. Regeneration of the articular surface of the rabbit synovial joint by cell homing: a proof of concept study. Lancet. 2010;376(9739):440-8.
88. Chang NJ, Lam CF, Lin CC, Chen WL, Li CF, Lin YT, Yeh ML. Transplantation of autologous endothelial progenitor cells in porous PLGA scaffolds create a microenvironment for the regeneration of hyaline cartilage in rabbits. Osteoarthr Cartil. 2013;21(10):1613-22.