Wu Juan, Jiang Wei, Shen Yewen, Jiang Wei, Tian Renbing
National Special Superfine Powder Engineering Research Center, Nanjing University of Science and Technology, Nanjing 210094, China.
National Special Superfine Powder Engineering Research Center, Nanjing University of Science and Technology, Nanjing 210094, China.
Mater Sci Eng C Mater Biol Appl. 2017 Jan 1;70(Pt 1):132-140. doi: 10.1016/j.msec.2016.08.054. Epub 2016 Aug 24.
Multifunctional nanocarriers based on the FeO nanoparticles core and mesoporous silica shell (mSiO) were synthesized for controlled drug release through magnetic targeting and pH-sensitive performances. The developed FeO@mSiO nanocarriers exhibited a suitable size (63nm) and good magnetic responsibility, doxorubicin (DOX) could be successfully loaded into the mesoporous of FeO@mSiO via electrostatic interaction, and the drug loading content and loading efficiency are 29.3% and 93.6%, respectively. The chitosan (CS) was employed to wrap the FeO@mSiO-DOX as the blocking agent to inhibit premature drug release, and the final CS/FeO@mSiO-DOX exhibited excellent pH-sensitivity, 86.1% DOX was released within 48h at pH4.0. Furthermore, all the release behaviors fit the Higuchi model very well and a purely diffusion-controlled process played a major role on DOX release from CS/FeO@mSiO-DOX. In addition, MTT assays in human liver hepatocellular carcinoma cells (HepG2) demonstrated that the CS/FeO@mSiO-DOX had high anti-tumor activity, while the FeO@mSiO nanocarriers were practically non-toxic. Thus, our results revealed that the CS/FeO@mSiO-DOX could play an important role in the development of intracellular delivery nanodevices for cancer therapy.
基于FeO纳米颗粒核心和介孔二氧化硅壳层(mSiO)的多功能纳米载体被合成出来,用于通过磁靶向和pH敏感性能实现药物的可控释放。所制备的FeO@mSiO纳米载体呈现出合适的尺寸(63nm)和良好的磁响应性,阿霉素(DOX)能够通过静电相互作用成功负载到FeO@mSiO的介孔中,药物负载量和负载效率分别为29.3%和93.6%。壳聚糖(CS)被用作包裹FeO@mSiO-DOX的阻滞剂,以抑制药物的过早释放,最终的CS/FeO@mSiO-DOX表现出优异的pH敏感性,在pH4.0条件下,48小时内86.1%的DOX被释放出来。此外,所有的释放行为都非常符合Higuchi模型,并且纯粹的扩散控制过程在DOX从CS/FeO@mSiO-DOX中的释放中起主要作用。另外,在人肝癌细胞(HepG2)中的MTT实验表明,CS/FeO@mSiO-DOX具有高抗肿瘤活性,而FeO@mSiO纳米载体几乎没有毒性。因此,我们的结果表明CS/FeO@mSiO-DOX在用于癌症治疗的细胞内递送纳米器件的开发中可以发挥重要作用。