Synthesis and characterization of biomimetic citrate‐based biodegradable composites

生物材料 材料科学 成骨细胞 碱性磷酸酶 生物医学工程 C2C12型 体外 生物物理学 生物化学 纳米技术 化学 生物 医学 肌发生
作者
Richard T. Tran,Liang Wang,Chang Zhang,Minjun Huang,Wei Tang,Chi Zhang,Zhongmin Zhang,Dadi Jin,Brittany L. Banik,Justin L. Brown,Zhiwei Xie,Xiaochun Bai,Jian Yang
出处
期刊:Journal of Biomedical Materials Research Part A [Wiley]
卷期号:102 (8): 2521-2532 被引量:62
标识
DOI:10.1002/jbm.a.34928
摘要

Abstract Natural bone apatite crystals, which mediate the development and regulate the load‐bearing function of bone, have recently been associated with strongly bound citrate molecules. However, such understanding has not been translated into bone biomaterial design and osteoblast cell culture. In this work, we have developed a new class of biodegradable, mechanically strong, and biocompatible citrate‐based polymer blends (CBPBs), which offer enhanced hydroxyapatite binding to produce more biomimetic composites (CBPBHAs) for orthopedic applications. CBPBHAs consist of the newly developed osteoconductive citrate‐presenting biodegradable polymers, crosslinked urethane‐doped polyester and poly (octanediol citrate), which can be composited with up to 65 wt % hydroxyapatite. CBPBHA networks produced materials with a compressive strength of 116.23 ± 5.37 MPa comparable to human cortical bone (100–230 MPa), and increased C2C12 osterix gene and alkaline phosphatase gene expression in vitro . The promising results above prompted an investigation on the role of citrate supplementation in culture medium for osteoblast culture, which showed that exogenous citrate supplemented into media accelerated the in vitro phenotype progression of MG‐63 osteoblasts. After 6 weeks of implantation in a rabbit lateral femoral condyle defect model, CBPBHA composites elicited minimal fibrous tissue encapsulation and were well integrated with the surrounding bone tissues. The development of citrate‐presenting CBPBHA biomaterials and preliminary studies revealing the effects of free exogenous citrate on osteoblast culture shows the potential of citrate biomaterials to bridge the gap in orthopedic biomaterial design and osteoblast cell culture in that the role of citrate molecules has previously been overlooked. © 2013 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 102A: 2521–2532, 2014.
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