Energy Materials Laboratory (EML), School of Sciences and Engineering, The American University in Cairo, New Cairo 11835, Egypt.
Department of Materials Science and Engineering, Egypt-Japan University for Science and Technology, New Borg El-Arab 21934, Alexandria, Egypt.
Sci Rep. 2017 Jan 12;7:40291. doi: 10.1038/srep40291.
Different strategies have been investigated to allow for optimum duration and conditions for endothelium healing through the enhancement of coronary stents. In this study, a nanoarchitectured system is proposed as a surface modification for drug eluting stents. Highly oriented nanotubes were vertically grown on the surface of a new Ni-free biocompatible Ti-based alloy, as a potential material for self-expandable stents. The fabricated nanotubes were self-grown from the potential stent substrate, which are also proposed to enhance endothelial proliferation while acting as drug reservoir to hinder Vascular Smooth Muscle Cells (VSMC) proliferation. Two morphologies were synthesized to investigate the effect of structure homogeneity on the intended application. The material was characterized by field-emission scanning electron microscope (FESEM), X-ray diffraction (XRD), Raman spectroscopy, energy dispersive X-ray spectroscopy (EDX), and X-ray photoelectron spectroscopy (XPS). Nanoindentation technique was used to study the mechanical properties of the fabricated material. Cytotoxicity and proliferation studies were performed and compared for the two fabricated nanoarchitectures, versus smooth untextured samples, using in-vitro cultured endothelial cells. Finally, the drug loading capacity was experimentally studied and further supported by computational modeling of the release profile.
已经研究了不同的策略,通过增强冠状动脉支架来实现最佳的内皮愈合时间和条件。在这项研究中,提出了一种纳米结构系统作为药物洗脱支架的表面改性。高度取向的纳米管垂直生长在新型无镍生物相容性 Ti 基合金表面上,作为自扩张支架的潜在材料。制造的纳米管是从潜在的支架基底自生长的,也被提议作为药物储库来抑制血管平滑肌细胞 (VSMC) 增殖,同时促进内皮细胞增殖。合成了两种形态以研究结构均匀性对预期应用的影响。用场发射扫描电子显微镜 (FESEM)、X 射线衍射 (XRD)、拉曼光谱、能量色散 X 射线光谱 (EDX) 和 X 射线光电子能谱 (XPS) 对材料进行了表征。纳米压痕技术用于研究制造材料的机械性能。使用体外培养的内皮细胞,对两种制造的纳米结构进行了细胞毒性和增殖研究,并与光滑无纹理的样品进行了比较。最后,通过对释放曲线的计算建模,对药物载药能力进行了实验研究和进一步支持。