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Full Length Articles

Effects of compressive ratio and sintering temperature on mechanical properties of biocompatible collagen/hydroxyapatite composite scaffolds fabricated for bone tissue engineering

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Pages 183-198 | Received 06 Dec 2018, Accepted 12 Mar 2019, Published online: 14 Apr 2019

References

  • Wang H, Li Y, Zuo Y, et al. Biocompatibility and osteogenesis of biomimetic nano-hydroxyapatite/polyamide composite scaffolds for bone tissue engineering. Biomaterials. 2007;28:3338–3348.
  • Sabree I, Gough JE, Derby B. Mechanical properties of porous ceramic scaffolds: influence of internal dimensions. Ceram Int. 2015;41:8425–8432.
  • Jarcho M. Calcium phosphate ceramics as hard tissue prosthetics. Clin Orthop Relat Res. 1981;157:259–278.
  • Hench LL, Wilson J. Surface-active biomaterials. Science. 1984;226:630–706.
  • Li Z, Ramay RH, Hauch KD. Xiao D and Zhang M. Chitosan-alginate hybrid scaffolds for bone tissue engineering. Biomaterials. 2005;26:3919–3928.
  • Hench LL. Bioceramics: from concept to clinic. J Am Ceram Soc. 1991;74:1487–1510.
  • Kitsugi TLT, Yamamuro T. Nakamura T and Oka M. Transmission electron microscopy observations at the interface of bone and four types of calcium phosphate ceramics with different calcium/phosphorus molar ratios. Biomaterials. 1995;16:1101–1107.
  • Posner AS, Betts F. Synthetic amorphous calcium phosphate and its relation to bone mineral structure. Acc Chem Res. 1975;8:273–281.
  • Legeros RZ. Apatites in biological systems. Prog Crys Growth Ch. 1981;4:1–45.
  • Hulbert SF, Young FA, Mathews RS, et al. Talbert CD and Stelling FH. Potential of ceramic materials as permanently implantable skeletal prostheses. J Biomed Mater Res A. 1970;4:433–456.
  • Mobasherpour I, Hashjin MS, Toosi SSR, et al. Effect of the addition ZrO2-Al2O3 on nanocrystalline hydroxyapatite bending strength and fracture toughness. Ceram Int. 2009;35:1569–1574.
  • Chiba A, Kimura S, Raghukandan K, et al. Effect of alumina addition on hydroxyapatite biocomposites fabricated by underwater-shock compaction. Mater Sci Eng A. 2003;350:179–183.
  • Xihua Z, Changxia L, Musen L, et al. Fabrication of hydroxyapatite/diopside/alumina composites by hot-press sintering process. Ceram Int. 2008;35:1969–1973.
  • Curran DJ, Fleming TJ, Towler MR, et al. Mechanical parameters of strontium doped hydroxyapatite sintered using micro-wave and conventional methods. J Mechan Behav Biomed Mater. 2011;4:2063–2073.
  • Que W, Khor KA, Xu JL, et al. Hydroxyapatite/titaniananocomposites derived by combining high-energy ball milling with spark plasma sintering processes. J Eur Ceram Soc. 2008;28:3083–3090.
  • Chaudhry AA, Yan H, Gong K, et al. High-strength nanograined and translucent hydroxyapatite monoliths via continuous hydrothermal synthesis and optimized spark plasma sintering. Acta Biomater. 2011;7:791–799.
  • O’Brien FJ. Biomaterials & scaffolds for tissue engineering (Review). Mater Today. 2011;4:88–95.
  • Kim -S-S, Sun Park M, Jeon O, et al. Poly(lactide-co-glycolide)/hydroxyapatite composite scaffolds for bone tissue engineering. Biomaterials. 2006;27:1399–1409.
  • Friess W, Schlap M. Sterilization of gentamicin containing collagen/PLGA microparticle composites. Eur J Pharm Biopharm. 2006;63:176–187.
  • Legeros RZ, Lin S, Rohanizadeh R, et al. Biphasic calcium phosphate bioceramics: preparation, properties and applications. J Mater Sci Mater M. 2003;14:201–209.
  • Landi E, Tampieri A. Celotti G and Sprio S. Densification behaviour and mechanisms of synthetic hydroxyapatites. J Eur Ceram Soc. 2000;20:2377–2387.
  • Munar ML, Udoh KI, Ishikawa K. Matsuya S and Nakagawa M. Effects of sintering temperature over 1300 °C on the physical and compositional properties of porous hydroxyapatite foam. Dent Mater J. 2006;25:51–58.
  • Islam MS, Kusumoto Y, Abdulla-Al-Mamun M. Novel rose-type magnetic (Fe3O4, γ-Fe2O3 and α-Fe2O3) nanoplates synthesized by simple hydrothermal decomposition. Mater Lett. 2011;66:165–167.
  • Pittenger MF, Mackay AM, Beck SC, et al. Multilineage potential of adult human mesenchymal stem cells. Science. 1999;284:143–147.
  • Islam MS, Todo M. Effects of sintering temperature on the compressive mechanical properties of collagen/hydroxyapatite composite scaffolds for bone tissue engineering. Mater Lett. 2016;173:231–234.
  • Karageorgiou V, Kaplan D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials. 2005;26:5474–5491.
  • Lien SM, Ko LY, Huang TJ. Effect of pore size on ECM secretion and cell growth in gelatin scaffold for articular cartilage tissue engineering. Acta Biomater. 2009;5:670–679.
  • Loh QL, Choong C. Three-dimensional scaffolds for tissue engineering applications: role of porosity and pore size. Tissue Eng B. 2013;19:485–502.
  • Sultana N, Wang M. Fabrication of HA/PHBV composite scaffolds through the emulsion freezing/freeze-drying process and characterization of the scaffolds. J Mater Sci Mater M. 2008;19:2555–2561.
  • Phanny Y, Development TM. Characterization of Poly (ε-caprolactone) Reinforced Porous Hydroxyapatite for Bone Tissue Engineering. Key Eng Mater. 2013;529–530:447–452.
  • Zamaniana A, et al. The effect of sintering temperature on the microstructural and mechanical characteristics of hydroxyapatite macroporous scaffolds prepared via freeze-casting. Key Eng Mater. 2012;529–530:133–137.
  • Rajendran A, Barik RC, Natarajan D, et al. Synthesis, phase stability of hydroxyapatite–silver composite with antimicrobial activity and cytocompatability. Ceram Int. 2014;40:10831–10838.
  • Werner J, Linner-Krčmar B, Friess W, et al. Mechanical properties and in vitro cell compatibility of hydroxyapatite ceramics with graded pore structure. Biomaterials. 2002;23:4285–4294.
  • Ramesh S, Aw KL, Tolouei R, et al. Sintering properties of hydroxyapatite powders prepared using different methods. Ceram Int. 2013;39:111–119.
  • Wu Q, Zhang X, Wu B, et al. Effects of microwave sintering on the properties of porous hydroxyapatite scaffolds. Ceram Int. 2013;39:2389–2395.
  • Mostafa NY. Characterization, thermal stability and sintering of hydroxyapatite powders prepared by different routes. Mater Chem Phys. 2005;94:333–341.
  • Aminzare M, Eskandari A, Barooniand MH, et al. Hydroxyapatite nanocomposites: synthesis, sintering and mechanical properties. Ceram Int. 2013;39:2197–2206.
  • Arahira T, Todo M. Effects of proliferation and differentiation of mesenchymal stem cells on compressive mechanical behavior of collagen/β-TCP composite scaffold. J Mechan Behav Biomed Mater. 2014;39:218–230.
  • Sous M, Bareille R, Rouais F, et al. Cellular biocompatibility and compression of macroporous b-tricalcium phosphate ceramics. Biomaterials. 1998;19:2147–2153.
  • Shors EC, Holmes RE. Porous hydroxyapatite. In: Hench LL, Wilson J, editors. An introduction to bioceramics. Singapore: World Scientific Publ.; 1993. p. 181–198.
  • Bouler JM, Trecant M, Delacin J, et al. Macroporous biphasic calcium phosphate ceramics: influence of five synthesis parameters on compressive strength. J Biomed Mater Res. 1996;32:603–609.
  • Zhou H, Lee J. Nanoscale hydroxyapatite particles for bone tissue engineering. Acta Biomater. 2011;7:2769–2781.
  • Ramakrisna S, Mayer J, Wintermantel E, et al. Biomedical application of polymer composite materials: a review. Compos Sci Technol. 2001;61:1189–1224.
  • Pattanayak DK. Apatite wollastonite-poly methyl methacrylate biocomposites. J Mater Sci Eng C. 2009;29:709–714.
  • Agrawal CM, Ray RB. Biodegradable polymeric scaffolds for musculoskeletal tissue engineering. J Biomed Mater Res. 2001;55:141–150.
  • Hutmacher DW. Scaffolds in tissue engineering bone and cartilage. Biomaterials. 2000;21:2529–2543.