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Enhancing Osteoconductivity of Fibrin Gels with Apatite-Coated Polymer Microspheres

纤维蛋白 磷灰石 生物相容性 化学 生物材料 生物医学工程 微球 自愈水凝胶 材料科学 生物矿化 骨整合 化学工程 纳米技术 高分子化学 植入 矿物学 外科 有机化学 免疫学 工程类 生物 医学
作者
Hamilton S. Davis,Bernard Y. K. Binder,Phillip Schaecher,Dana D. Yakoobinsky,Archana Bhat,J. Kent Leach
出处
期刊:Tissue Engineering Part A [Mary Ann Liebert, Inc.]
卷期号:19 (15-16): 1773-1782 被引量:29
标识
DOI:10.1089/ten.tea.2012.0288
摘要

Fibrin gels are a promising material for use in promoting bone repair and regeneration due to their ease of implant formation, tailorability, biocompatibility, and degradation by natural processes. However, these materials lack necessary osteoconductivity to nucleate calcium, integrate with surrounding bone, and promote bone formation. Polymeric substrata formed from poly(lactide-co-glycolide) (PLG) are widely used in bone tissue engineering. A carbonated apatite layer of bone-like mineral can be successfully grown on the surface of PLG microspheres after a multiday incubation process in modified simulated body fluid. Such coatings improve the osteoconductivity of the polymer, provide nucleation sites for cell-secreted calcium, and enhance the potential osseointegration with host tissue. We examined the capacity of mineralized polymeric microspheres suspended within fibrin hydrogels to enhance the osteoconductivity of fibrin gels and increase the osteogenic potential of these materials. The inclusion of microparticles, both nonmineralized and mineralized, reduced the capacity of mesenchymal stem cells (MSCs) to contract the gel. When cultured in osteogenic media, we detected a near linear increase in both calcium and phosphate incorporation in gels containing mineralized microspheres and entrapped MSCs. The osteoconductivity of acellular fibrin gels with mineralized and nonmineralized microspheres was assessed in a rodent calvarial bone defect over 12 weeks. Compared to untreated rodent calvarial bone defects, we detected significant increases in early vascularization when treated with fibrin gels, with greater vascularization, on average, occurring with gels containing microspheres. We detected a trend for increased bone mineral density in gels containing mineralized microspheres after 12 weeks. These findings demonstrate that the osteoconductivity of fibrin gels can be increased by inclusion of mineralized microspheres, but additional signals may be required to rapidly accelerate bone repair.

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