Department of Materials Engineering, The University of Tokyo, Tokyo, Japan.
Colloids Surf B Biointerfaces. 2011 Nov 1;88(1):215-20. doi: 10.1016/j.colsurfb.2011.06.034. Epub 2011 Jul 18.
The surface of a titanium (Ti) alloy substrate was modified by a simple and quick process using a water-soluble polymer, and the effects of 3,4-dihydroxyphenyl (DHP) groups in the polymer side chain on the modification process were examined. The polymers (PMDP) composed of both 2-methacryloyloxyethyl phosphorylcholine (MPC) unit and 3,4-dihydroxyphenyl methacrylate unit were synthesized for surface anchoring. The Ti alloy substrate was coated with PMDP using an aqueous solution of the polymer. A PMDP layer with a thickness of 20 nm was formed on the Ti alloy substrate simply by dip coating for 10s without drying. Even when the Ti alloy substrate with PMDP coating was immersed in the aqueous medium for 1 week, no change in the thickness was observed, i.e., the PMDP layer was bound to the surface very stably. Oxidation of the DHP groups reduced the stability of the polymer layer significantly. Thus, the DHP groups play a significant role in achieving stable binding. Protein was adsorbed on the Ti alloy substrate; however, this was not observed for the PMDP-coated Ti alloy substrate. In conclusion, we confirmed the effects of DHP groups in PMDP on the stability of the coating on the Ti alloy substrate. Moreover, we found that surface treatment using PMDP was simple, quick, and reliable, and thus, it has great potential for improving biofouling of Ti alloy substrates used in medical devices.
钛(Ti)合金表面通过一种简单快速的工艺用一种水溶性聚合物进行改性,并研究了聚合物侧链上的 3,4-二羟基苯基(DHP)基团对改性过程的影响。合成了由 2-(甲基丙烯酰氧)乙基磷酸胆碱(MPC)单元和 3,4-二羟基苯甲基丙烯酸酯单元组成的聚合物(PMDP)用于表面锚定。Ti 合金基底通过聚合物水溶液进行 PMDP 涂层。通过简单的浸渍 10 秒(无需干燥)即可在 Ti 合金基底上形成厚度为 20nm 的 PMDP 层。即使将涂有 PMDP 的 Ti 合金基底浸入水性介质中 1 周,也没有观察到厚度的变化,即 PMDP 层非常稳定地结合在表面上。DHP 基团的氧化显著降低了聚合物层的稳定性。因此,DHP 基团在实现稳定结合方面起着重要作用。蛋白质被吸附在 Ti 合金基底上;然而,在涂有 PMDP 的 Ti 合金基底上没有观察到这种情况。总之,我们证实了 PMDP 中的 DHP 基团对 Ti 合金基底上涂层稳定性的影响。此外,我们发现使用 PMDP 的表面处理既简单又快速且可靠,因此在改善医疗器械用 Ti 合金基底的生物污垢方面具有很大的潜力。