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Systematic characterization of 3D-printed PCL/β-TCP scaffolds for biomedical devices and bone tissue engineering: Influence of composition and porosity

Published online by Cambridge University Press:  15 May 2018

Arnaud Bruyas
Affiliation:
Department of Orthopaedic Surgery, Stanford University, Stanford, California 94305, USA
Frank Lou
Affiliation:
Department of Mechanical Engineering, Stanford University, Stanford, California 94305, USA
Alexander M. Stahl
Affiliation:
Department of Chemistry, Orthopaedic Surgery, Stanford University, Stanford, California 94305, USA
Michael Gardner
Affiliation:
Department of Orthopaedic Surgery, Stanford University, Stanford, California 94305, USA
William Maloney
Affiliation:
Department of Orthopaedic Surgery, Stanford University, Stanford, California 94305, USA
Stuart Goodman
Affiliation:
Department of Orthopaedic Surgery, Stanford University, Stanford, California 94305, USA
Yunzhi Peter Yang*
Affiliation:
Department of Orthopaedic Surgery, Bioengineering, Material Science and Engineering, Stanford University, Stanford, California 94305, USA
*
a)Address all correspondence to this author. e-mail: [email protected]
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Abstract

This work aims at providing guidance through systematic experimental characterization for the design of 3D-printed scaffolds for potential orthopedic applications, focusing on fused deposition modeling with a composite of clinically available polycaprolactone (PCL) and β-tricalcium phosphate (β-TCP). First, we studied the effect of the chemical composition (0–60% β-TCP/PCL) on the scaffold’s properties. We showed that surface roughness and contact angle were, respectively, proportional and inversely proportional to the amount of β-TCP and that degradation rate increased with the amount of ceramic. Biologically, the addition of β-TCP enhanced proliferation and osteogenic differentiation of C3H10. Second, we systematically investigated the effect of the composition and the porosity on the 3D-printed scaffold mechanical properties. Both an increasing amount of β-TCP and a decreasing porosity augmented the apparent Young’s modulus of the 3D-printed scaffolds. Third, as a proof of concept, a novel multimaterial biomimetic implant was designed and fabricated for potential disc replacement.

Type
Invited Article
Copyright
Copyright © Materials Research Society 2018 

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Footnotes

b)

These authors contributed equally to this work.

References

REFERENCES

Hutmacher, D.W.: Scaffolds in tissue engineering bone and cartilage. Biomaterials 24, 25292543 (2000).CrossRefGoogle Scholar
Lichte, P., Pape, H.C., Pufe, T., Kobbe, P., and Fischer, H.: Scaffolds for bone healing: Concepts, materials and evidence. Injury 42, 569573 (2011).CrossRefGoogle ScholarPubMed
Stevens, B., Yang, Y., Mohandas, A., Stucker, B., and Nguyen, T.K.: A review of materials, fabrication methods, and strategies used to enhance bone regeneration in engineered bone tissues. J. Biomed. Mater. Res., Part B 85, 573582 (2011).Google Scholar
Bose, S., Vahabzadeh, S., and Bandyopadhyay, A.: Bone tissue engineering using 3D printing. Mater. Today 16, 496504 (2013).CrossRefGoogle Scholar
Kawai, T., Shanjani, Y., Fazeli, S., Behn, A.W., Okuzu, Y., Goodman, S.B., and Yang, Y.P.: Customized, degradable, functionally graded scaffold for potential treatment of early stage osteonecrosis of the femoral head. J. Orthop. Res. 35, 23673 (2017).Google Scholar
Singh, S. and Ramakrishna, S.: Biomedical applications of additive manufacturing: Present and future. Curr. Opin. Biomed. Eng. 2, 105115 (2017).CrossRefGoogle Scholar
Elomaa, L. and Yang, Y.P.: Additive manufacturing of vascular grafts and vascularized tissue constructs. Tissue Eng. B Rev. 23, 436450 (2017).CrossRefGoogle ScholarPubMed
Hutmacher, D.W., Schantz, T., Zein, I., Ng, K.W., Teoh, S.H., and Tan, K.C.: Mechanical properties and cell cultural response of polycaprolactone scaffolds designed and fabricated via fused deposition modeling. J. Biomed. Mater. Res. 55, 203216 (2001).3.0.CO;2-7>CrossRefGoogle ScholarPubMed
Goyanes, A., Buanz, A.B.M., Basit, A., and Gaisford, S.: Fused-filament 3D printing (3DP) for fabrication of tablets. Int. J. Pharm. 476, 8892 (2014).CrossRefGoogle ScholarPubMed
Zein, I., Hutmacher, D.W., Tan, K.C., and Teoh, S.H.: Fused deposition modeling of novel scaffold architectures for tissue engineering applications. Biomaterials 23, 11691185 (2002).CrossRefGoogle ScholarPubMed
Marrella, A., Lee, T.Y., Lee, D.H., Karuthedom, S., Syla, D., Chawla, A., Khademhosseini, A., and Jang, H.L.: Engineering vascularized and innervated bone biomaterials for improved skeletal tissue regeneration. Mater. Today 2017, (2017).Google Scholar
Shanjani, Y., Kang, Y., Zarnescu, L., Ellerbee Bowden, A.K., Koh, J.T., Ker, D.F.E., and Yang, Y.: Endothelial pattern formation in hybrid constructs of additive manufactured porous rigid scaffolds and cell-laden hydrogels for orthopedic applications. J. Mech. Behav. Biomed. Mater. 65, 356372 (2017).CrossRefGoogle ScholarPubMed
Woodruff, M.A. and Hutmacher, D.W.: The return of a forgotten polymer—Polycaprolactone in the 21st century. Prog. Polym. Sci. 35, 12171256 (2010).CrossRefGoogle Scholar
Huang, B., Caetano, G., Vyas, C., Blaker, J.J., Diver, C., and Bártolo, P.: Polymer–ceramic composite scaffolds: The effect of hydroxyapatite and β-tri-calcium phosphate. Materials 11, 129 (2018).CrossRefGoogle ScholarPubMed
Legeros, R.Z.: Calcium phosphate-based osteoinductive materials. Chem. Rev. 108, 47424753 (2008).CrossRefGoogle ScholarPubMed
Yeo, A., Rai, B., Sju, E., Cheong, J.J., and Teoh, S.H.: The degradation profile of novel, bioresorbable PCL–TCP scaffolds: An in vitro and in vivo study. J. Biomed. Mater. Res., Part A 84, 208218 (2008).CrossRefGoogle ScholarPubMed
Lee, H. and Kim, G.H.: Three-dimensional plotted PCL/β-TCP scaffolds coated with a collagen layer: Preparation, physical properties and in vitro evaluation for bone tissue regeneration. J. Mater. Chem. 21, 63056312 (2011).CrossRefGoogle Scholar
Lei, Y., Rai, B., Ho, K.H., and Teoh, S.H.: In vitro degradation of novel bioactive polycaprolactone—20% tricalcium phosphate composite scaffolds for bone engineering. Mater. Sci. Eng., C 27, 293298 (2007).CrossRefGoogle Scholar
Hollister, S.J.: Porous scaffold design for tissue engineering. Nat. Mater. 4, 518524 (2005).CrossRefGoogle ScholarPubMed
Hollister, S.J., Maddox, R.D., and Taboas, J.M.: Optimal design and fabrication of scaffolds to mimic tissue properties and satisfy biological constraints. Biomaterials 23, 40954103 (2002).CrossRefGoogle ScholarPubMed
Shin, Y.M., Park, J.S., Jeong, S.I., An, S.J., Gwon, H.J., and Lim, Y.M.: Promotion of human mesenchymal stem cell differentiation on bioresorbable polycaprolactone/biphasic calcium phosphate composite scaffolds for bone tissue engineering. Biotechnol. Bioproc. Eng. 19, 341349 (2014).CrossRefGoogle Scholar
Lepoittevin, B., Devalckenaere, M., Pantoustier, N., Alexandre, M., Kubies, D., Calberg, C., Jerome, R., and Dubois, P.: Poly(ε-caprolactone)/clay nanocomposites prepared by melt intercalation: Mechanical, thermal and rheological properties. Polymer 43, 40174023 (2002).CrossRefGoogle Scholar
Lam, C.X., Teoh, S.H., and Hutmacher, D.W.: Comparison of the degradation of polycaprolactone and polycaprolactone–(β-tricalcium phosphate) scaffolds in alkaline medium. Polym. Int. 56, 718728 (2007).CrossRefGoogle Scholar
Li, S.M., Chen, X.H., Gross, R.A., and McCarthy, S.P.: Hydrolytic degradation of PCL/PEO copolymers in alkaline media. J. Mater. Sci.: Mater. Med. 11, 227233 (2000).Google ScholarPubMed
Polini, A., Pisignano, D., Parodi, M., Quarto, R., and Scaglione, S.: Osteoinduction of human mesenchymal stem cells by bioactive composite scaffolds without supplemental osteogenic growth factors. PLoS One 6, (2011).CrossRefGoogle ScholarPubMed
Mirhadi, S., Ashwood, N., and Karagkevrekis, B.: Factors influencing fracture healing. Trauma 15, 140155 (2013).CrossRefGoogle Scholar
Nielsen, L.E.: Mechanical properties of particulate-filled systems. J. Compos. Mater. 1, 100119 (1967).CrossRefGoogle Scholar
Gibson, L.J.: The mechanical behaviour of cancellous bone. J. Biomech. 18, 317328 (1985).CrossRefGoogle ScholarPubMed
Serhan, H., Mhatre, D., Defossez, H., and Bono, C.M.: Motion-preserving technologies for degenerative lumbar spine: The past, present, and future horizons. SAS J. 5, 7589 (2011).CrossRefGoogle ScholarPubMed
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