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Materiales compuestos basados en brushita y policaprolactona para aplicación en regeneración ósea

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2011
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1. Delloye C, Cnockaert N, Cornu O. Bone substitutes in 2003: an overview. Acta Orthopaedica Belgica, 69 (2003) 1. 2. Moore WR, Graves SE, Bain GI. Synthetic bone graft substitutes. ANZ J Surg. 71 (6) (2001) 354-61. 3. Brown PW, Chow LC. A new calcium phosphate water setting cement. In: Brown PD, editor. Proceedings of the American Ceramic Society. Westerville, OH; (1986) 352-379. 4. Fernández E, Gil FJ, Ginebra MP, Driessens FC, Planell JA, Best SM. Calcium phosphate bone cements for clinical applications. Part I: solution chemistry. J Mater Sci Mater Med. 10(3) (1999) 169-76. 5. Ambard AJ, Mueninghoff L. Calcium phosphate cement: review of mechanical and biological properties. J Prosthodont. 15(5) (2006) 321-8. 6. Chow LC. Calcium phosphate cements:chemistry, properties, and applications. Mater Res Symp Proc 599 (2000) 27–37. 7. Costantino PD, Friedman CD, Jones K, Chow LC, Sisson GA. Experimental hydroxyapatite cement cranioplasty. Plast Reconstr Surg 90 (1992)174–91. 8. Friedman CD, Costantino PD, Takagi S, Chow LC. BoneSourceTM hydroxyapatite cement: a novel biomaterial for craniofacial skeletal tissue engineering and reconstruction. J Biomed Mater Res (Appl Biomater) 43B (1998) 428–32. 9. Larsson S, Bauer TW. Use of injectable calcium phosphate cement for fracture fixation: a review. Clin Orthop Relat Res. 395 (2002) 23-32. 10. Heini PF, Berlemann U, Kaufmann M, Lippuner K, Fankhauser C, van Landuyt P. Augmentation of mechanical properties in osteoporotic vertebral bones--a biomechanical investigation of vertebroplasty efficacy with different bone cements. Eur Spine J. 10(2) (2001)164-71. 11. Theiss F, Apelt D, Brand B, Kutter A, Zlinszky K, Bohner M, Matter S, Frei C, Auer JA, von Rechenberg B. Biocompatibility and resorption of a brushite calcium phosphate cement. Biomaterials. 26(21) (2005) 4383-94. 12. Grases F, Ramis M, Costa-Bauzá A.Effects of phytate and pyrophosphate on brushite and hydroxyapatite crystallization. Comparison with the action of other polyphosphates. Urol Res. 28(2) (2000) 136-40. 13. Gbureck U, Grolms O, Barralet JE, Grover LM, Thull R. Mechanical activation and cement formation of β-tricalcium phosphate. Biomaterials 24(23) (2003) 4123-31. 14. Charrière E, Terrazzoni S, Pittet C, Mordasini PH, Dutoit M, Lemaître J, Zysset PH. Mechanical characterization of brushite and hydroxyapatite cements. Biomaterials 22(21) (2001) 2937-45. 15. Tamimi F, Torres J, Lopez-Cabarcos E, Bassett DC, Habibovic P, Luceron E, Barralet JE. Minimally invasive maxillofacial vertical bone augmentation using brushite based cements. Biomaterials 30(2) (2009) 208-16. 16. Ji C, Ahn JG.Clinical experience of the brushite calcium phosphate cement for the repair and augmentation of surgically induced cranial defects following the pterional craniotomy. J Korean Neurosurg Soc. 47(3) (2010)180-4. 17. Alkhraisat MH, Rueda C, Jerez LB, Tamimi Mariño F, Torres J, Gbureck U, Lopez Cabarcos E. Effect of silica gel on the cohesion, properties and biological performance of brushite cement. Acta Biomater. 6 (1) (2010) 257-65. 18. Alkhraisat MH, Rueda C, Mariño FT, Torres J, Jerez LB, Gbureck U, Cabarcos EL.The effect of hyaluronic acid on brushite cement cohesion. Acta Biomater. 5(8)(2009) 3150-6. 19. Tamimi-Mariño F, Mastio J, Rueda C, Blanco L, López-Cabarcos E.Increase of the final setting time of brushite cements by using chondroitin 4-sulfate and silica gel. J Mater Sci Mater Med. 18(6) (2007) 1195-201. 20. Hofmann M, Lilley K, Gbureck U, Barralet J. Carboxylic acids as brushite bone cement setting retardants. In: Proceedings of the 19th European Conference on Biomaterials. Naples; (2005) 411-418. 21. Lilley KJ, Gbureck U, Wright AJ, Farrar D, Barralet JE. Investigation into carboxylic acids as cement reactants. Key Eng Mater 309/311 (2006) 853-856. 22. Mariño FT, Torres J, Hamdan M, Rodríguez CR, Cabarcos EL. Advantages of using glycolic acid as a retardant in a brushite forming cement. J Biomed Mater Res B Appl Biomater. 83(2) (2007) 571-9. 23. Mariño FT, Torres J, Tresguerres I, Jerez LB, Cabarcos EL.Vertical bone augmentation with granulated brushite cement set in glycolic acid. J Biomed Mater Res A.81 (1) (2007) 93-102. 24. dos Santos LA, de Oliveira LC, da Silva Rigo EC, Carrodéguas RG, Boschi AO, Fonseca de Arruda AC. Fiber reinforced calcium phosphate cement. Artif Organs. 24(3) (2000) 212-6. 25. Lian Q, Li DC, He JK, Wang Z. Mechanical properties and in-vivo performance of calcium phosphate cement-chitosan fibre composite. Proc Inst Mech Eng H. 222 (3) (2008) 347-53. 26. Xu HH, Simon CG Jr. Fast setting calcium phosphate-chitosan scaffold: mechanical properties and biocompatibility. Biomaterials 26(12) (2005)1337-48. 27. Xu HH, Burguera EF, Carey LE. Strong, macroporous, and in situ-setting calcium phosphate cement-layered structures. Biomaterials. 28(26) (2007) 3786-96. 28. Xu HH, Quinn JB, Takagi S, Chow LC. Synergistic reinforcement of in situ hardening calcium phosphate composite scaffold for bone tissue engineering. Biomaterials. 25(6) (2004)1029-37. 29. Xu HH, Weir MD, Simon CG. Injectable and strong nano-apatite scaffolds for cell/growth factor delivery and bone regeneration. Dent Mater. 24(9) (2008)1212-22. 30. Pan Z, Jiang P, Fan Q, Ma B, Cai H.Mechanical and biocompatible influences of chitosan fiber and gelatin on calcium phosphate cement. J Biomed Mater Res B Appl Biomater. 82(1) (2007) 246-52. 31. Weir MD, Xu HH. Osteoblastic induction on calcium phosphate cement-chitosan constructs for bone tissue engineering. J Biomed Mater Res A. 94(1) (2010) 223-33. 32. Miyazaki K, Horibe T, Antonucci JM, Takagi S, Chow LC. Polymeric calcium phosphate cements: analysis of reaction products and properties. Dent Mater. 9(1) (1993) 41-5. 33. Liao H, Walboomers XF, Habraken WJ, Zhang Z, Li Y, Grijpma DW, Mikos AG, Wolke JG, Jansen JA. Injectable calcium phosphate cement with PLGA, gelatin and PTMC microspheres in a rabbit femoral defect . Acta Biomater. 7(4) (2011) 1752-9. 34. Xu HH, Eichmiller FC, Giuseppetti AA. Reinforcement of a self-setting calcium phosphate cement with different fibers. J Biomed Mater Res. 52(1) (2000) 107-14. 35. Xu HH, Eichmiller FC, Barndt PR. Effects of fiber length and volume fraction on the reinforcement of calcium phosphate cement. J Mater Sci Mater Med. 12(1) (2001) 57-65. 36. dos Santos LA, Carrodéguas RG, Boschi AO, Fonseca de Arruda AC. Fiberenriched double-setting calcium phosphate bone cement. J Biomed Mater Res A. 65(2)(2003) 244-50. 37. Xu HH, Quinn JB, Takagi S, Chow LC, Eichmiller FC. Strong and macroporous calcium phosphate cement: Effects of porosity and fiber reinforcement on mechanical properties. J Biomed Mater Res. 57(3) (2001) 457-66. 38. Buchanan F, Gallagher L, Jack V, Dunne N. Short-fibre reinforcement of calcium phosphate bone cement. Proc Inst Mech Eng H. 221(2) (2007) 203-11. 39. Gorst NJ, Perrie Y, Gbureck U, Hutton AL, Hofmann MP, Grover LM, Barralet JE. Effects of fibre reinforcement on the mechanical properties of brushite cement. Acta Biomater. 2(1) (2006) 95-102. 40. H.H.K. Xu and C.G. Simon, Self-hardening calcium phosphate cement-mesh composite: reinforcement, macropores, and cell response, J Biomed Mater Res A 69 (2004) 267–278 41. Moreau JL, Weir MD, Xu HH.Self-setting collagen-calcium phosphate bone cement: mechanical and cellular properties. J Biomed Mater Res A.91(2) (2009) 605-13. 42. Tamimi F, Kumarasami B, Doillon C, Gbureck U, Le Nihouannen D, Cabarcos EL, Barralet JE. Brushite-collagen composites for bone regeneration. Acta Biomater. 4(5) (2008) 1315-21. 43. Dagang G, Haoliang S, Kewei X, Yong H. Long-term variations in mechanical properties and in vivo degradability of CPC/PLGA composite. J Biomed Mater Res B Appl Biomater. 82(2) (2007) 533-44. 44. Qi X, Ye J, Wang Y. Alginate/poly (lactic-co-glycolic acid)/calcium phosphate cement scaffold with oriented pore structure for bone tissue engineering. J Biomed Mater Res A. 89(4) (2009) 980-7. 45. Burguera EF, Xu HH, Takagi S, Chow LC. High early strength calcium phosphate bone cement: effects of dicalcium phosphate dihydrate and absorbable fibers. J Biomed Mater Res A. 275(4) (2005) 966-75. 46. Alge DL, Chu TM. Calcium phosphate cement reinforcement by polymer infiltration and in situ curing: a method for 3D scaffold reinforcement. J Biomed Mater Res A.94(2) (2010) 547-55. 47. Xu HH, Quinn JB. Calcium phosphate cement containing resorbable fibers for short-term reinforcement and macroporosity. Biomaterials. 23 (1) (2002)193-202. 48. Palmer LC, Newcomb CJ, Kaltz SR, Spoerke ED, Stupp SI. Biomimetic systems for hydroxyapatite mineralization inspired by bone and enamel. Chem Rev. 108(11) (2008) 4754-83. 49. Kweon H, Yoo MK, Park IK, Kim TH, Lee HC, Lee HS, Oh JS, Akaike T, Cho CS. A novel degradable polycaprolactone networks for tissue engineering. Biomaterials. 24(5) (2003) 801-8. 50. Fang R, Zhang E, Xu L, Wei S. Electrospun PCL/PLA/HA based nanofibers as scaffold for osteoblast-like cells. J Nanosci Nanotechnol. 10(11) (2010) 7747-51. 51. Scaglione S, Ilengo C, Fato M, Quarto R. Hydroxyapatite-coated polycaprolacton wide mesh as a model of open structure for bone regeneration. Tissue Eng Part A. 15(1) (2009) 155-63. 52. Wutticharoenmongkol P, Sanchavanakit N, Pavasant P, Supaphol P. Novel bone scaffolds of electrospun polycapro actone fibers filled with nanoparticles. J Nanosci Nanotechnol. 6(2) (2006) 514-22. 53. Wutticharoenmongkol P, Sanchavanakit N, Pavasant P, Supaphol P. Preparation and characterization of novel bone scaffolds based on electrospun polycaprolactone fibers filled with nanoparticles. Macromol Biosci. 6(1) (2006) 70-7. 54. Tyagi P, Catledge SA, Stanishevsky A, Thomas V, Vohra YK. Nanomechanical properties of electrospun composite scaffolds based on polycaprolactone and hydroxyapatite. J Nanosci Nanotechnol. 9(8) (2009) 4839-45. 55. Shor L, Güçeri S, Wen X, Gandhi M, Sun W. Fabrication of three-dimensional polycaprolactone/hydroxyapatite tissue scaffolds and osteoblast-scaffold interactions in vitro. Biomaterials. 28(35) (2007) 5291-7. 56. Sun JJ, Bae CJ, Koh YH, Kim HE, Kim HW. Fabrication of hydroxyapatitepoly( epsilon-caprolactone) scaffolds by a combination of the extrusion and bi-axial lamination processes. J Mater Sci Mater Med.18(6) (2007) 1017-23. 57. Bina Rai , Jane L. Lin , Zophia X.H. Lim , Robert E. Guldberg , Dietmar W. Hutmacher ,Simon M. Cool . Differences between in vitro viability and differentiation and in vivo bone-forming efficacy of human mesenchymal stem cells cultured on PCLTCP scaffolds. Biomaterials 31 (2010) 7960-7970. 58. Sunny A. Abbah , Christopher XL. Lam , Dietmar W. Hutmacher , James CH. Goh , Hee-Kit Wong. Biological performance of a polycaprolactone-based scaffold used as fusion cage device in a large animal model of spinal reconstructive surgery. Biomaterials 30 (2009) 5086–5093. 59. Lei Y, Rai B , Ho KH, Teoh SH . In vitro degradation of novel bioactive polycaprolactone -20% tricalcium phosphate composite scaffolds for bone engineering. Materials Science and Engineering C 27 (2007) 293–298. 60. Cevat Erisken, Dilhan M. Kalyon*, Hongjun Wang. Functionally graded electrospun polycaprolactone and b-tricalcium phosphate nanocomposites for tissue engineering applications. Biomaterials 29 (2008) 4065–4073. 61. Sun-Jong Kim, Myung-Rae Kim, Jin-Sub Oh, Inho Han, and Sang-Wan Shin. Effects of Polycaprolactone-Tricalcium Phosphate, Recombinant Human Bone Morphogenetic Protein-2 and Dog Mesenchymal Stem Cells on Bone Formation: Pilot Study in Dogs. Yonsei Med J 50(6) (2009)825-831. 62. Sinha VR, Bansal K, Kaushik R, Kumria R, Trehan A. Poly-epsilon-caprolactone microspheres and nanospheres: an overview. Int J Pharm. 278(1) (2004)1-23. 63. Quaglia F, Ostacolo L, Nese G, De Rosa G, La Rotonda MI, Palumbo R, Maglio G. Microspheres made of poly(epsilon-caprolactone)-based amphiphilic copolymers: potential in sustained delivery of proteins. Macromol Biosci. 25(10) (2005) 945-54. 64. Kim HW, Knowles JC, Kim HE. Hydroxyapatite/poly(epsilon-caprolactone) composite coatings on hydroxyapatite porous bone scaffold for drug delivery. Biomaterials. 25(7-8) (2004) 1279-87. 65. Zuo Y, Yang F, Wolke JG, Li Y, Jansen JA. Incorporation of biodegradable electrospun fibers into calcium phosphate cement for bone regeneration. Acta Biomater. 6 (4) (2010)1238-47. 66. Alkhraisat MH, Moseke C, Blanco L, Barralet JE, López-Cabarcos E, Gbureck U. Strontium modified biocements with zero order release kinetics. Biomaterials 29 (2008) 4691-4697.