纳米笼
铁蛋白
阿霉素
材料科学
纳米医学
药物输送
药品
化学
生物物理学
纳米技术
化学工程
药理学
纳米颗粒
生物化学
医学
催化作用
化疗
生物
工程类
外科
作者
Haining Xia,Huangtao Xu,Jiarong Wang,Changhao Wang,Ruiguo Chen,Tongxiang Tao,Shuai Xu,Jing Zhang,Kun Ma,Junfeng Wang
标识
DOI:10.1016/j.ijbiomac.2023.126973
摘要
Ferritin possesses a stable and uniform cage structure, along with tumor-targeting properties and excellent biocompatibility, making it a promising drug delivery vehicle. However, the current ferritin drug loading strategy involves complex steps and harsh reaction conditions, resulting in low yield and recovery of drug loading, which limits the clinical application prospects of ferritin nanomedicine. In this study, we utilized the high-efficiency heat-sensitivity of the multiple channel switch structures of the E-helix-cut ferritin mutant (Ecut-HFn) and Cu2+ assistance to achieve high-efficiency loading of chemotherapeutic drugs in a one-step process at low temperatures. This method features mild reaction conditions (45 °C), high loading efficiency (about 110 doxorubicin (Dox) per Ecut-HFn), and improved protein and Dox recovery rates (with protein recovery rate around 94 % and Dox recovery rate reaching up to 45 %). The prepared ferritin-Dox particles (Ecut-HFn-Cu-Dox) exhibit a uniform size distribution, good stability, and retain the natural tumor targeting ability of ferritin. Overall, this temperature-controlled drug loading strategy utilizing heat-sensitivity ferritin mutants is energy-saving, environmentally friendly, efficient, and easy to operate, offering a new perspective for scaling up the industrial production of ferritin drug carriers.
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