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Conversion of natural marine skeletons as scaffolds for bone tissue engineering 被引量:1

Conversion of natural marine skeletons as scaffolds for bone tissue engineering
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摘要 Marine CaCO3 skeletons have tailored architectures created by nature, which give them structural support and other functions. For example, seashells have dense lamellar structures, while coral, cuttlebone and sea urchin spines have interconnected porous structures. In our experiments, seashells, coral and cuttlebone were hydrothermaily converted to hydroxyapatite (HAP), and sea urchin spines were converted to Mg-substituted tricalcium phosphate, while maintaining their original structures. Partially converted shell samples have mechanical strength, which is close to that of compact human bone. After implantation of converted shell and spine samples in rat femoral defects for 6 weeks, there was newly formed bone growth up to and around the implants. Some new bone was found to migrate through the pores of converted spine samples and grow inward. These results show good bioactivity and osteoconductivity of the implants, indicating the converted shell and spine samples can be used as bone defect fillers. The interconnected porous HAP scaffolds from converted coral or cuttlebone that have pore size larger than 100μm likely support infiltration of bone cells and vessels, and finally encourage new bone ingrowth. Marine CaCO3 skeletons have tailored architectures created by nature, which give them structural support and other functions. For example, seashells have dense lamellar structures, while coral, cuttlebone and sea urchin spines have interconnected porous structures. In our experiments, seashells, coral and cuttlebone were hydrothermaily converted to hydroxyapatite (HAP), and sea urchin spines were converted to Mg-substituted tricalcium phosphate, while maintaining their original structures. Partially converted shell samples have mechanical strength, which is close to that of compact human bone. After implantation of converted shell and spine samples in rat femoral defects for 6 weeks, there was newly formed bone growth up to and around the implants. Some new bone was found to migrate through the pores of converted spine samples and grow inward. These results show good bioactivity and osteoconductivity of the implants, indicating the converted shell and spine samples can be used as bone defect fillers. The interconnected porous HAP scaffolds from converted coral or cuttlebone that have pore size larger than 100μm likely support infiltration of bone cells and vessels, and finally encourage new bone ingrowth.
出处 《Frontiers of Materials Science》 SCIE CSCD 2013年第2期103-117,共15页 材料学前沿(英文版)
关键词 SEASHELL sea urchin spine CORAL CUTTLEBONE hydrothermal conversion hydroxyapatite (HAP) β-tricalcium phosphate (-TCP) seashell sea urchin spine coral cuttlebone hydrothermal conversion hydroxyapatite (HAP) β-tricalcium phosphate (-TCP)
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  • 1Laurencin C T, Attawia M, Borden M D. Advancements in tissue engineered bone substitutes. Current Opinion in Orthopaedics, 1999, 10(6): 445-451. 被引量:1
  • 2Enneking W. Transplanting allografts. Journal of the American College of Surgeons, 2005, 201 (1): 5-6. 被引量:1
  • 3LeGcros R Z. Biodegradation and bioresorption of calcium phosphate ceramics. Clinical Materials, 1993. 14(1): 65 88. 被引量:1
  • 4Karageorgiou V, Kaplan D. Porosity of 3D biomaterial scaffolds and osteogenesis. Biomaterials, 2005, 26(27): 5474 5491. 被引量:1
  • 5[ Hing K A. Bioceramic bone graft substitutes: Influence of porosity and chemistry. International Journal of Applied Ceramic Techno- logy, 2005, 2(3): 184 199. 被引量:1
  • 6LeGeros R Z. Properties ofosteoconductive biomaterials: calcium phosphates. Clinical Orthopaedics and Related Research, 2002, 395(395): 81 98. 被引量:1
  • 7Vallet-Regi M, Gonzfilez-Calbet J M. Calcium phosphates as substitution of bone tissues. Progress in Solid State Chemistry, 2004, 32(1-2): 1-31. 被引量:1
  • 8Aoki H, Kato K, Ebihara M, et al. Studies on the application of apatite to dental materials. (I) Apatite ceramics. Shika Rikogaku Zasshi, 1976, 17(39): 200-205. 被引量:1
  • 9Barney V C, Levin M P, Adams D F. Bioceramic implants in surgical periodontal defects. A comparison study. Journal of Periodontology, 1986, 57(12): 764-770. 被引量:1
  • 10Cranin A N, Tobin G P, Gelbman J. Applications of hydro- xylapatite in oral and maxillofacial surgery. Part II: Ridge augmentation and repair of major oral defects. Compendium, 1987, 8(5): 334 335, 337-338, 340. 被引量:1

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