Department of Mechanical Engineering, Keio University, 3-14-1 Hiyoshi, Kohoku-ku, Yokohama, 223-8522, Japan.
Department of Radiology, Tokai University Hachioji Hospital, Tokai University School of Medicine, 1838 Ishikawa-cho, Hachioji-shi, Tokyo, 192-0032, Japan.
J Biomed Mater Res A. 2017 Dec;105(12):3384-3391. doi: 10.1002/jbm.a.36201. Epub 2017 Sep 23.
In this study, a newly designed drug-release platform composed of an antithrombogenic 2-methacryloyloxyethyl phosphorylcholine (MPC) polymer was introduced, which was impregnated with basic fibroblast growth factor (bFGF) (bFGF/MPC polymer) to enhance the endothelial cell activation. The platform was also coated with an ultrathin micropatterned diamond-like carbon (DLC) film (DLC/bFGF/MPC polymer) to precisely control the drug release rate and the cell compatibility. The resulting DLC/bFGF/MPC polymer could effectively prolong the bFGF release rate by depositing the micropatterned DLC. The number of adherent platelets on the DLC/bFGF/MPC polymer was significantly lower (about 1/14) than that on a currently used stent made of stainless steel (SUS316L), indicating the enhanced antithrombogenicity in the DLC/bFGF/MPC polymer. The proliferation of endothelial cells on the DLC/bFGF/MPC polymer and the DLC/MPC polymer (without bFGF) were also examined. It was found that the optical density of HUVEC on the DLC/bFGF/MPC polymer determined by WST-8 assay was higher by 25%than that on the DLC/MPC polymer (without bFGF) measured after 72 h of incubation. Our results suggest that the released bFGF that contributes to the expression of other growth factors results in the early proliferation of the HUVEC on the DLC/bFGF/MPC polymer. © 2017 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 105A: 3384-3391, 2017.
在这项研究中,引入了一种新设计的药物释放平台,该平台由抗血栓形成的 2-甲基丙烯酰氧乙基磷酸胆碱(MPC)聚合物组成,并用碱性成纤维细胞生长因子(bFGF)(bFGF/MPC 聚合物)浸渍以增强内皮细胞的激活。该平台还涂有超薄膜状类金刚石碳(DLC)膜(DLC/bFGF/MPC 聚合物),以精确控制药物释放率和细胞相容性。通过沉积微图案 DLC,所得 DLC/bFGF/MPC 聚合物可以有效地延长 bFGF 的释放速率。在 DLC/bFGF/MPC 聚合物上附着的血小板数量明显低于(约 1/14)目前使用的不锈钢(SUS316L)制成的支架,表明 DLC/bFGF/MPC 聚合物具有增强的抗血栓形成性。还检查了内皮细胞在 DLC/bFGF/MPC 聚合物和 DLC/MPC 聚合物(无 bFGF)上的增殖。通过 WST-8 测定,发现在用 DLC/bFGF/MPC 聚合物培养 72 小时后,HUVEC 的光密度比在无 bFGF 的 DLC/MPC 聚合物上高 25%。我们的结果表明,释放的 bFGF 有助于其他生长因子的表达,从而导致 HUVEC 在 DLC/bFGF/MPC 聚合物上的早期增殖。 © 2017 Wiley Periodicals,Inc. J Biomed Mater Res Part A:105A:3384-3391,2017。