Key Laboratory of Functional Polymer Materials, Institute of Polymer Chemistry, Nankai University, Tianjin 300071, PR China.
Colloids Surf B Biointerfaces. 2013 Mar 1;103:15-22. doi: 10.1016/j.colsurfb.2012.10.041. Epub 2012 Nov 1.
A dually responsive nanocarrier with multilayer core-shell architecture was prepared based on Fe(3)O(4)@SiO(2) nanoparticles coated with mPEG-poly(l-Asparagine). Imidazole groups (pK(a)∼6.0) were tethered to the side chains of poly(l-Asparagine) segments by aminolysis. These nanoparticles were expected to be sensitive to both magnetic field and pH environment. The obtained materials were characterized with FTIR, dynamic light scattering, ζ-potential, TEM, TGA and hysteresis loop analysis. It was found that this Fe(3)O(4)@SiO(2)-polymer complex can form nano-scale core-shell-corona trilayer particles (∼250 nm) in aqueous solution. The Fe(3)O(4)@SiO(2), poly(L-Asparagine) and mPEG segments serve as a super-paramagnetic core, a pH-sensitive shell, and a hydrophilic corona, respectively. An antitumor agent, doxorubicin (DOX), was successfully loaded into the nanocarrier via combined actions of hydrophobic interaction and hydrogen bonding. The drug release profiles displayed a pH-dependent behavior. DOX release rate increased significantly as the ambient pH dropped from the physiological pH (7.4) to acidic (5.5). This is most likely due to protonation and a change in hydrophilicity of the imidazole groups in the poly(l-Asparagine) segments. This new approach may serve as a promising platform to formulate magnetic targeted drug delivery systems.
一种具有多层核壳结构的双重响应纳米载体是基于 Fe(3)O(4)@SiO(2)纳米粒子制备的,该纳米粒子表面涂覆有 mPEG-聚(L-天冬酰胺)。通过氨解将咪唑基团(pK(a)∼6.0)键合到聚(L-天冬酰胺)链段的侧链上。预计这些纳米粒子对磁场和 pH 环境都很敏感。所得到的材料通过 FTIR、动态光散射、ζ-电位、TEM、TGA 和磁滞回线分析进行了表征。结果表明,这种 Fe(3)O(4)@SiO(2)-聚合物复合物在水溶液中可以形成纳米级的核壳-冠三层颗粒(约 250nm)。Fe(3)O(4)@SiO(2)、聚(L-天冬酰胺)和 mPEG 段分别作为超顺磁核、pH 敏感壳和亲水冠。通过疏水相互作用和氢键的共同作用,成功地将抗肿瘤药物阿霉素(DOX)载入纳米载体中。药物释放曲线表现出 pH 依赖性。当环境 pH 值从生理 pH(7.4)降至酸性(5.5)时,DOX 的释放速率显著增加。这很可能是由于聚(L-天冬酰胺)链段中的咪唑基团质子化和亲水性的改变。这种新方法可能成为一种有前途的平台,可以用来构建磁性靶向药物传递系统。