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骨形态发生蛋白-2 释放谱调节磷酸化水凝胶中的骨形成。

Bone morphogenetic protein-2 release profile modulates bone formation in phosphorylated hydrogel.

机构信息

Department of Physiology and Biomedical Engineering, Mayo Clinic College of Medicine, Rochester, MN, USA.

Department of Orthopedic Surgery, Mayo Clinic College of Medicine, Rochester, MN, USA.

出版信息

J Tissue Eng Regen Med. 2018 Jun;12(6):1339-1351. doi: 10.1002/term.2664. Epub 2018 May 1.

Abstract

The optimal release profile of locally delivered bone morphogenetic protein-2 (BMP-2) for safe and effective clinical application is unknown. In this work, the effect of differential BMP-2 release on bone formation was investigated using a novel biomaterial oligo[(polyethylene glycol) fumarate] bis[2-(methacryloyloxy) ethyl] phosphate hydrogel (OPF-BP) containing poly(lactic-co-glycolic acid) microspheres. Three composite implants with the same biomaterial chemistry and structure but different BMP-loading methods were created: BMP-2 encapsulated in microspheres (OPF-BP-Msp), BMP-2 encapsulated in microspheres and adsorbed on the phosphorylated hydrogel (OPF-BP-Cmb), and BMP-2 adsorbed on the phosphorylated hydrogel (OPF-BP-Ads). These composites were compared with the clinically used BMP-2 carrier, Infuse® absorbable collagen sponge (ACS). Differential release profiles of bioactive BMP-2 were achieved by these composites. In a rat subcutaneous implantation model, OPF-BP-Ads and ACS generated a large BMP-2 burst release (>75%), whereas a more sustained release was seen for OPF-BP-Msp and OPF-BP-Cmb (~25% and 50% burst, respectively). OPF-BP-Ads generated significantly more bone than did all other composites, and the bone formation was 12-fold higher than that of the clinically used ACS. Overall, this study clearly shows that BMP-2 burst release generates more subcutaneous bone than do sustained release in OPF-BP-microsphere composites. Furthermore, composites should not only function as a delivery vehicle but also provide a proper framework to achieve appropriate bone formation.

摘要

局部递送骨形态发生蛋白-2(BMP-2)的最佳释放曲线对于安全有效的临床应用尚不清楚。在这项工作中,使用含有聚(乳酸-共-乙醇酸)微球的新型生物材料聚[(聚乙二醇)富马酸]双[2-(甲基丙烯酰氧基)乙基]磷酸酯水凝胶(OPF-BP)研究了不同 BMP-2 释放对骨形成的影响。通过三种具有相同生物材料化学和结构但不同 BMP 加载方法的复合植入物创建了该模型:包封在微球中的 BMP-2(OPF-BP-Msp)、包封在微球中并吸附在磷酸化水凝胶上的 BMP-2(OPF-BP-Cmb)和吸附在磷酸化水凝胶上的 BMP-2(OPF-BP-Ads)。将这些复合材料与临床使用的 BMP-2 载体 Infuse®可吸收胶原海绵(ACS)进行了比较。这些复合材料实现了生物活性 BMP-2 的差异释放曲线。在大鼠皮下植入模型中,OPF-BP-Ads 和 ACS 产生了大量的 BMP-2 爆发释放(>75%),而 OPF-BP-Msp 和 OPF-BP-Cmb 则显示出更持续的释放(分别为 25%和 50%的爆发)。OPF-BP-Ads 产生的骨量明显多于其他所有复合材料,骨形成量比临床使用的 ACS 高 12 倍。总的来说,这项研究清楚地表明,BMP-2 爆发释放比 OPF-BP 微球复合材料中的持续释放产生更多的皮下骨。此外,复合材料不仅应作为递送载体,还应提供适当的框架以实现适当的骨形成。

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