CC BY-NC-ND 4.0 · Eur J Dent 2017; 11(04): 496-502
DOI: 10.4103/ejd.ejd_4_17
Original Article
Dental Investigation Society

On the synthesis and characterization of β-tricalcium phosphate scaffolds coated with collagen or poly (D, L-lactic acid) for alveolar bone augmentation

Isadora S. Deschamps
1   Department of Mechanical Engineering (EMC), Ceramic and Composite Materials Research Laboratories (CERMAT), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
,
Gabriel L. Magrin
2   Department of Dentistry (ODT), Center for Education and Research on Dental Implants (CEPID), Postgraduation Program in Dentistry (PPGO), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
,
Ricardo S. Magini
2   Department of Dentistry (ODT), Center for Education and Research on Dental Implants (CEPID), Postgraduation Program in Dentistry (PPGO), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
,
Márcio C. Fredel
1   Department of Mechanical Engineering (EMC), Ceramic and Composite Materials Research Laboratories (CERMAT), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
,
Cesar A.M. Benfatti
2   Department of Dentistry (ODT), Center for Education and Research on Dental Implants (CEPID), Postgraduation Program in Dentistry (PPGO), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
,
Júlio C.M. Souza
1   Department of Mechanical Engineering (EMC), Ceramic and Composite Materials Research Laboratories (CERMAT), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
2   Department of Dentistry (ODT), Center for Education and Research on Dental Implants (CEPID), Postgraduation Program in Dentistry (PPGO), Federal University of Santa Catarina (UFSC), Florianópolis, 88040-900, Santa Catarina, Brazil
› Author Affiliations
Further Information

Publication History

Publication Date:
01 October 2019 (online)

ABSTRACT

Objectives: After tooth loss, dimensional alterations on the alveolar bone ridge can occur that can negatively affect the placement of dental implants. The purpose of this study was to evaluate the synthesis, and mechanical properties of β-tricalcium phosphate (β-TCP) scaffolds coated with bioabsorbable polymers, namely, collagen and poly (D, L-lactic acid) (PDLLA). Materials and Methods: β-TCP powder was obtained by reactive milling and then characterized by X-ray diffraction and scanning electron microscopy/energy dispersive X-ray spectroscopy (SEM/EDS). β-TCP scaffolds were obtained by replica method, in which polyurethane foams are immersed in β-TCP suspension and thereafter submitted to a thermal treatment to remove the polyurethane and sinter the ceramic. Type-I collagen or PDLLA were used to coat the β-TCP scaffolds by dip-coating method. Scaffolds were separated in four groups depending on the coating material: noncoated (Group A), double immersion in collagen (Group B), double immersion in PDLLA (Group C), and ten immersions in PDLLA (Group D). Samples were characterized by compressive tests and SEM/EDS. Data were statistically analyzed through two-way ANOVA (p = 0.05). Results: Chemical and microscopic analyses revealed proper morphology and chemical composition of powder particles and scaffolds with or without polymeric coatings. Scaffolds coated with PDLLA showed higher compressive strength (0.11 ± 0.054 MPa) than those of collagen (0.022 ± 0.012 MPa) or noncoated groups (0.024 ± 0.012 MPa). Conclusions: The coating method of β-TCP with PDLLA revealed a potential strategy to increase the mechanical strength of porous ceramic materials while collagen can enhance cell migration.

 
  • REFERENCES

  • 1 Araújo MG, Lindhe J. Dimensional ridge alterations following tooth extraction. An experimental study in the dog. J Clin Periodontol 2005; 32: 212-8
  • 2 Macedo JP, Pereira J, Vahey BR, Henriques B, Benfatti CA, Magini RS. et al. Morse taper dental implants and platform switching: The new paradigm in oral implantology. Eur J Dent 2016; 10: 148-54
  • 3 Tessier P, Kawamoto H, Matthews D, Posnick J, Raulo Y, Tulasne JF. et al. Autogenous bone grafts and bone substitutes – Tools and techniques: I. A 20,000-case experience in maxillofacial and craniofacial surgery. Plast Reconstr Surg 2005; 116 (Suppl. 05) 6S-S24
  • 4 Acocella A, Bertolai R, Colafranceschi M, Sacco R. Clinical, histological and histomorphometric evaluation of the healing of mandibular ramus bone block grafts for alveolar ridge augmentation before implant placement. J Craniomaxillofac Surg 2010; 38: 222-30
  • 5 Samavedi S, Whittington AR, Goldstein AS. Calcium phosphate ceramics in bone tissue engineering: A review of properties and their influence on cell behavior. Acta Biomater 2013; 9: 8037-45
  • 6 LeGeros RZ. Calcium phosphate-based osteoinductive materials. Chem Rev 2008; 108: 4742-53
  • 7 MaPX. Scaffolds for tissue fabrication. Mater Today 2004; 7: 30-40
  • 8 Okamoto M, John B. Synthetic biopolymer nanocomposites for tissue engineering scaffolds. Prog Polym Sci 2013; 38: 1487-503
  • 9 Liu Y, Lim J, Teoh SH. Review: Development of clinically relevant scaffolds for vascularised bone tissue engineering. Biotechnol Adv 2013; 31: 688-705
  • 10 Chen FM, Jin Y. Periodontal tissue engineering and regeneration: Current approaches and expanding opportunities. Tissue Eng Part B Rev 2010; 16: 219-55
  • 11 Karageorgiou V, Kaplan D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials 2005; 26: 5474-91
  • 12 Do AV, Khorsand B, Geary SM, Salem AK. 3D printing of scaffolds for tissue regeneration applications. Adv Healthc Mater 2015; 4: 1742-62
  • 13 Horowitz RA, Mazor Z, Miller RJ, Krauser J, Prasad HS, Rohrer MD. Clinical evaluation alveolar ridge preservation with a beta-tricalcium phosphate socket graft. Compend Contin Educ Dent 2009; 30: 588-90-592, 594
  • 14 Das S, Jhingran R, Bains VK, Madan R, Srivastava R, Rizvi I. Socket preservation by beta-tri-calcium phosphate with collagen compared to platelet-rich fibrin: A clinico-radiographic study. Eur J Dent 2016; 10: 264-76
  • 15 Miao X, Tan DM, Li J, Xiao Y, Crawford R. Mechanical and biological properties of hydroxyapatite/tricalcium phosphate scaffolds coated with poly (lactic-co-glycolic acid). Acta Biomater 2008; 4: 638-45
  • 16 Kang Y, Scully A, Young DA, Kim S, Tsao H, Sen M. et al. Enhanced mechanical performance and biological evaluation of a PLGA coated ß-TCP composite scaffold for load-bearing applications. Eur Polym J 2011; 47: 1569-77
  • 17 Philippart A, Boccaccini AR, Fleck C, Schubert DW, Roether JA. Toughening and functionalization of bioactive ceramic and glass bone scaffolds by biopolymer coatings and infiltration: A review of the last 5 years. Expert Rev Med Devices 2015; 12: 93-111
  • 18 Shimauchi H, Nemoto E, Ishihata H, Shimomura M. Possible functional scaffolds for periodontal regeneration. Jpn Assoc Dent Sci 2013; 49: 118-30
  • 19 Ikada Y. Challenges in tissue engineering. J R Soc Interface 2006; 3: 589-601
  • 20 Colombo P. Conventional and novel processing methods for cellular ceramics. Philos Trans A Math Phys Eng Sci 2006; 364: 109-24
  • 21 Rodrigues DS, Buciumeanu M, Martinelli AE, Nascimento RM, Henriques B, Silva FS. et al. Mechanical strength and wear of dental glass-ionomer and resin composites affected by porosity and chemical composition. J Bio Tribol Corros 2015; 1: 24
  • 22 Frondel C. Mineralogy of the calcium phosphates in insular phisphate rock. Am Mineral 1943; 28: 215-32
  • 23 Davies JE, Matta R, Mendes VC, Perri de Carvalho PS. Development, characterization and clinical use of a biodegradable composite scaffold for bone engineering in oro-maxillo-facial surgery. Organogenesis 2010; 6: 161-6
  • 24 Kido HW, Tim CR, Bossini PS, Parizotto NA, de Castro CA, Crovace MC. et al. Porous bioactive scaffolds: Characterization and biological performance in a model of tibial bone defect in rats. J Mater Sci Mater Med 2015; 26: 74
  • 25 Martínez-Vázquez FJ, Perera FH, Miranda P, Pajares A, Guiberteau F. Improving the compressive strength of bioceramic robocast scaffolds by polymer infiltration. Acta Biomater 2010; 6: 4361-8
  • 26 Nalla RK, Kinney JH, Ritchie RO. Mechanistic fracture criteria for the failure of human cortical bone. Nat Mater 2003; 2: 164-8
  • 27 Alcaide M, Serrano MC, Roman J, Cabañas MV, Peña J, Sánchez-Zapardiel E. et al. Suppression of anoikis by collagen coating of interconnected macroporous nanometric carbonated hydroxyapatite/agarose scaffolds. J Biomed Mater Res A 2010; 95: 793-800