journal article Jul 01, 2005

Porous scaffold design for tissue engineering

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References
74
[1]
Sanan, A. & Haines, S. J. Repairing holes in the head: a history of cranioplasty. J. Neurosurg. 40, 588–603 (1997).
[2]
Langer, R. & Vacanti, J. P. Tissue engineering. Science 260, 920–926 (1993). 10.1126/science.8493529
[3]
Audet, J. Stem cell bioengineering for regenerative medicine. Expert Opin. Biol. Ther. 4, 631–644 (2004). 10.1517/14712598.4.5.631
[4]
Caplan, A. I., Reuben, D. & Haynesworth, S. E. Cell-based tissue engineering therapies: the influence of whole body physiology. Adv. Drug Deliv. Rev. 33, 3–14 (1998). 10.1016/s0169-409x(98)00016-7
[5]
Bonadio, J. Tissue engineering via local gene delivery. J. Mol. Med. 78, 303–311 (2000). 10.1007/s001090000118
[6]
Cutroneo, K. R. Gene therapy for tissue regeneration. J. Cell Biochem. 88 418–425 (2003). 10.1002/jcb.10357
[7]
Hashin, Z. & Shtrikman, S. A variational approach to the theory of the elastic behavior of multiphase materials. J. Mech. Phys. Solids 11, 127–140 (1962). 10.1016/0022-5096(63)90060-7
[8]
Torquato, S. Random Heterogenous Materials: Microstructure and Macroscopic Properties (Springer, New York, 2002). 10.1007/978-1-4757-6355-3
[9]
Hollister, S. J., Levy R. A., Chu, T. M., Halloran, J. W. & Feinberg, S. E. An image-based approach for designing and manufacturing craniofacial scaffolds. Int. J. Oral Maxillofac. Surg. 29, 67–71 (2002). 10.1034/j.1399-0020.2000.290115.x
[10]
Hollister, S. J., Maddox, R. D. & Taboas, J. M. Optimal design and fabrication of scaffolds to mimic tissue properties and satisfy biological constraints. Biomater. 23, 4095–4103 (2002). 10.1016/s0142-9612(02)00148-5
[11]
Lin, C. Y., Kikuchi, N. & Hollister, S. J. A novel method for biomaterial scaffold internal architecture design to match bone elastic properties with desired porosity. J. Biomech. 37, 623–636 (2004). 10.1016/j.jbiomech.2003.09.029
[12]
Sun, W., Starly, B., Darling, A. & Gomez, C. Computer-aided tissue engineering: application to biomimetic modelling and design of tissue scaffolds. Biotechnol. Appl. Biochem. 39, 49–58 (2004). 10.1042/ba20030109
[13]
Sun, W., Darling, A., Starly, B. & Nam, J. Computer-aided tissue engineering: overview, scope and challenges. Biotechnol. Appl. Biochem. 39, 29–47 (2004). 10.1042/ba20030108
[14]
Fang, Z., Starly, B. & Sun, W. Computer-aided characterization for effective mechanical properties of porous tissue scaffolds. Comput. Aid. Design 37, 65–72 (2005). 10.1016/j.cad.2004.04.002
[15]
Cheah, C. M., Chua, C. K., Leong, K. F., Cheong, C. H. & Naing, M. W. Automatic algorithm for generating complex polyhedral scaffold structures for tissue engineering. Tissue Eng. 10 595–610 (2004). 10.1089/107632704323061951
[16]
Van Cleyenbreugel, T., Van Oosterwyck, H., Vander Sloten J. & Schrooten J. Trabecular bone scaffolding using a biomimetic approach. J. Mater Sci. Mater. Med. 13, 1245–1249 (2002). 10.1023/a:1021183230549
[17]
Yang, S., Leong, K. F., Du, Z. & Chua, C. K. The design of scaffolds for use in tissue engineering. Part II. Rapid prototyping techniques. Tissue Eng. 8, 1–11 (2002). 10.1089/107632702753503009
[18]
Sanchez-Palencia, E. & Zaoui, A. Homogenization Techniques for Composite Media (Springer, Berlin, 1987). 10.1007/3-540-17616-0
[19]
Hollister, S. J. & Kikuchi, N. Homogenization theory and digital imaging: a basis for studying the mechanics and design principles of bone tissue. Biotech. Bioeng. 43, 586–596 (1994). 10.1002/bit.260430708
[20]
Terada, K., Ito T. & Kikuchi, N. Characterization of the mechanical behaviors of solid-fluid mixture by the homogenization method. Comp. Meth. App. Mech. Eng. 153, 223–257 (1998). 10.1016/s0045-7825(97)00071-6
[21]
Sigmund, O. Materials with prescribed constitutive parameters – an inverse homogenization problem. J. Solids Struct. 31, 2513–2529 (1994). 10.1016/0020-7683(94)90154-6
[22]
Lin, C. Y., Hsiao, C. C., Chen P. Q. & Hollister, S. J. Interbody fusion cage design using integrated global layout and local microstructure topology optimization. Spine 29, 1747–1754 (2004). 10.1097/01.brs.0000134573.14150.1a
[23]
Hutmacher, D. W., Sittinger, M. & Risbud, M. V. Scaffold-based tissue engineering: rationale for computer-aided design and solid free-form fabrication systems. Trends Biotechnol. 22, 354–362 (2004). 10.1016/j.tibtech.2004.05.005
[24]
Leong, K. F., Cheah, C. M. & Chua, C. K. Solid freeform fabrication of three-dimensional scaffolds for engineering replacement tissues and organs. Biomaterials 24, 2363–2378 (2003). 10.1016/s0142-9612(03)00030-9
[25]
Sachlos, E. & Czernuszka, J. T. Making scaffolds work: a review on the application of solid freeform fabrication technology to the production of tissue engineering scaffolds. Eur. Cell Mater. 5, 29–40 (2003). 10.22203/ecm.v005a03
[26]
Tsang, V. L. & Bhatia, S. N. Three dimensional tissue fabrication. Adv. Drug Deliv. 56, 1635–1647 (2004). 10.1016/j.addr.2004.05.001
[27]
Yeong, W. Y., Chua, C. K., Leong, K. F. & Chandrasekaran, M. Rapid prototyping in tissue engineering: challenges and potential. Trends Biotechnol. 22, 643–652 (2004). 10.1016/j.tibtech.2004.10.004
[28]
Bose, S. et al. Processing and characterization of porous alumina scaffolds. J. Mater. Sci. Mater. Med. 13, 23–28 (2002). 10.1023/a:1013622216071
[29]
Chu, T. M., Hollister, S. J., Halloran, J. W., Feinberg, S. E. & Orton, D. G. Manufacturing and characterization of 3-d hydroxyapatite bone tissue engineering scaffolds. Ann. NY Acad. Sci. 961, 114–117 (2002). 10.1111/j.1749-6632.2002.tb03061.x
[30]
Chua, C. K., Leong, K. F., Tan, K. H., Wiria, F. E. & Cheah, C. M. Development of tissue scaffolds using selective laser sintering of polyvinyl alcohol/hydroxyapatite biocomposite for craniofacial and joint defects. J. Mater. Sci. Mater. Med. 15, 1113–1121 (2004). 10.1023/b:jmsm.0000046393.81449.a5
[31]
Ciardelli, G. et al. Innovative tissue engineering structures through advanced manufacturing technologies. J. Mater. Sci. Mater. Med. 15, 305–310 (2004). 10.1023/b:jmsm.0000021092.03087.d4
[32]
Cooke, M. N., Fisher, J. P., Dean, D., Rimnac, C. & Mikos, A. G. Use of stereolithography to manufacture critical-sized 3D biodegradable scaffolds for bone ingrowth. J. Biomed. Mater. Res. 64B, 65–69 (2003). 10.1002/jbm.b.10485
[33]
Dhariwala, B., Hunt, E. & Boland, T. Rapid prototyping of tissue-engineering constructs, using photopolymerizable hydrogels and stereolithography. Tissue Eng. 10, 1316–1322 (2004). 10.1089/ten.2004.10.1316
[34]
Fisher, J. P. et al. A. Soft and hard tissue response to photocrosslinked poly(propylene fumarate) scaffolds in a rabbit model. J. Biomed. Mater. Res. 59, 547–556 (2002). 10.1002/jbm.1268
[35]
Giordano, R. A. et al. Mechanical properties of dense polylactic acid structures fabricated by three dimensional printing. J. Biomater. Sci. Polym. Edn 8, 63–75 (1996). 10.1163/156856297x00588
[36]
Hutmacher, D. W. et al. Mechanical properties and cell cultural response of polycaprolactone scaffolds designed and fabricated via fused deposition modeling. J. Biomed. Mater. Res. 55, 203–216 (2001). 10.1002/1097-4636(200105)55:2<203::aid-jbm1007>3.0.co;2-7
[37]
Khalil, S., Nam J. & Sun, W. Multi-nozzle deposition for construction of 3D biopolymer tissue scaffolds. Rapid Prototyp. J. 11, 9–17 (2005). 10.1108/13552540510573347
[38]
Landers, R., Hubner, U., Schmelzeisen, R. & Mulhaupt, R. Rapid prototyping of scaffolds derived from thermoreversible hydrogels and tailored for applications in tissue engineering. Biomaterials 23, 4437–4447 (2002). 10.1016/s0142-9612(02)00139-4
[39]
Levy, R. A., Chu, T. M., Halloran, J. W., Feinberg, S. E. & Hollister, S. J. CT-generated porous hydroxyapatite orbital floor prosthesis as a prototype bioimplant. Am. J. Neuroradiol. 18, 1522–1525 (1997).
[40]
Pfister, A. et al. Biofunctional rapid prototyping for tissue-engineering applications: 3D bioplotting versus 3D printing. J. Polym. Sci. 42, 624–638 (2004). 10.1002/pola.10807
[41]
Sodian, R. et al. Application of stereolithography for scaffold fabrication for tissue engineered heart valves. Am. Soc. Artificial Internal Organs J. 48, 12–16 (2002). 10.1097/00002480-200201000-00004
[42]
Tan, K. H. et al. Selective laser sintering of biocompatible polymers for applications in tissue engineering. Biomed. Mater. Eng. 15, 113–124 (2005).
[43]
Vozzi, G., Flaim, C., Ahluwalia, A. & Bhatia, S. Fabrication of PLGA scaffolds using soft lithography and microsyringe deposition. Biomaterials 24, 2533–2540 (2003). 10.1016/s0142-9612(03)00052-8
[44]
Wang, F. et al. Precision extruding deposition and characterization of poly-e-caprolactone tissue scaffolds. Rapid Prototype J. 10, 42–49 (2004). 10.1108/13552540410512525
[45]
Wilson, C. E., de Bruijn, J. D., van Blitterswijk, C. A., Verbout, A. J. & Dhert, W. J. Design and fabrication of standardized hydroxyapatite scaffolds with a defined macro-architecture by rapid prototyping for bone-tissue-engineering research. J. Biomed. Mate.r Res. A 68, 123–132 (2004). 10.1002/jbm.a.20015
[46]
Zein, I., Hutmacher, D. W., Tan, K. C. & Teoh, S. H. Fused deposition modeling of novel scaffold architectures for tissue engineering applications. Biomaterials 23, 1169–1185 (2002). 10.1016/s0142-9612(01)00232-0
[47]
Koegler, W. S. & Griffith, L. G. Osteoblast response to PLGA tissue engineering scaffolds with PEO modified surface chemistries and demonstration of patterned cell response. Biomaterials 25, 2819–2830 (2004). 10.1016/j.biomaterials.2003.09.064
[48]
Taboas, J. M., Maddox, R. D., Krebsbach, P. H. & Hollister, S. J. Indirect solid free form fabrication of local and global porous, biomimetic and composite 3D polymer-ceramic scaffolds. Biomaterials 24, 181–194 (2003). 10.1016/s0142-9612(02)00276-4
[49]
Park, A., Wu, B. & Griffith, L. G. Integration of surface modification and 3D fabrication techniques to prepare patterned poly(L-lactide) substrates allowing regionally selective cell adhesion. J. Biomater. Sci. Polym. Edn 9, 89–110 (1998). 10.1163/156856298x00451
[50]
Goulet, R. W. et al. The relationship between the structural and orthogonal compressive properties of trabecular bone, J. Biomech. 27m 375–389 (1994). 10.1016/0021-9290(94)90014-0

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74
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Details
Published
Jul 01, 2005
Vol/Issue
4(7)
Pages
518-524
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Cite This Article
Scott J. Hollister (2005). Porous scaffold design for tissue engineering. Nature Materials, 4(7), 518-524. https://doi.org/10.1038/nmat1421
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