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双 pH 敏感载药系统用于精准高效的化疗。

Dual-pH Sensitive Charge-Reversal Drug Delivery System for Highly Precise and Penetrative Chemotherapy.

机构信息

Department of Traditional Chinese Medicine, Shenyang Pharmaceutical University, No.103, Wenhua Road, Shenyang, 110016, China.

Department of Pharmacology, Shenyang Pharmaceutical University, No.103, Wenhua Road, Shenyang, 110016, China.

出版信息

Pharm Res. 2020 Jul 8;37(7):134. doi: 10.1007/s11095-020-02852-6.

Abstract

PURPOSE

The complex physiological barriers impose extremely conflicting demands on systemic drug delivery, so both particle size and surface charge of the nanoplatforms become vital factors. As a carbon-based nanomaterial with excellent optical properties, carbon dots are not suitable for direct systemic transport in vivo, which limits their application in the field of biomedical imaging, especially in the areas of diagnosis and cancer treatment. Liposomes have been developed as universal nanocarriers for various drugs. In this study, we aimed to build a highly precise and penetrative drug delivery system (DDS) using carbon dots encapsulated by liposomes.

METHODS

Carbon dots (CDs) were synthesized by the hydrothermal method using citric acid and ethylenediamine. Furthermore, simian virus 40 large T-antigen derived the nuclear targeting sequence (NLS) was bonded on the surface of CDs to obtain CDs-NLS. The antitumor drug doxorubicin was loaded onto the CDs-NLS through an acid-labile hydrazine bond to obtain DOX@CDs. Finally, DOX@CDs were encapsulated in aqueous centers of folate-coated and pH-sensitive liposomes, named pHSL-FA.

RESULTS

In this paper, a nucleus-targeted nanocomposite (DOX@CDs), which bonds with the nuclear targeting sequence (NLS) and the anticancer drug doxorubicin (DOX), has physicochemical properties of particle size of about 3.8 nm, zeta potential of +31.8 mV and high quantum yield of 64.53%. The negatively charged folate-coated and pH-sensitive liposomes (pHSL-FA) are used as a carrier to reverse the surface charge of DOX@CDs. Compared to free DOX@CDs, pHSL-FA show higher tumor accumulation in 4 T1 tumor-bearing mice and further improve cytotoxicity to tumor cells.

CONCLUSIONS

This work proposes a unique nanomedical approach that enables the precise delivery of chemotherapy drugs and significantly reduces side effects, which is promising for clinical translation.

摘要

目的

复杂的生理屏障对全身药物输送提出了极其矛盾的要求,因此纳米平台的粒径和表面电荷都成为至关重要的因素。作为一种具有优异光学性能的碳基纳米材料,碳点并不适合直接在体内进行全身运输,这限制了它们在生物医学成像领域的应用,特别是在诊断和癌症治疗领域。脂质体已被开发为各种药物的通用纳米载体。在本研究中,我们旨在构建一种使用脂质体包裹的碳点的高度精确和穿透性的药物输送系统(DDS)。

方法

采用水热法以柠檬酸和乙二胺为原料合成碳点(CDs)。进一步地,将来源于猿猴病毒 40 大 T 抗原的核靶向序列(NLS)键合到 CDs 表面以获得 CDs-NLS。通过酸不稳定的腙键将抗肿瘤药物阿霉素负载到 CDs-NLS 上以获得 DOX@CDs。最后,将 DOX@CDs 包封在叶酸修饰和 pH 敏感的脂质体的水性中心内,命名为 pHSL-FA。

结果

在本文中,一种结合了核靶向序列(NLS)和抗肿瘤药物阿霉素(DOX)的核靶向纳米复合物(DOX@CDs)具有约 3.8nm 的粒径、+31.8mV 的 zeta 电位和 64.53%的高量子产率等理化性质。带负电荷的叶酸修饰和 pH 敏感的脂质体(pHSL-FA)被用作载体以逆转 DOX@CDs 的表面电荷。与游离的 DOX@CDs 相比,pHSL-FA 在 4T1 荷瘤小鼠中具有更高的肿瘤积累,并进一步提高了对肿瘤细胞的细胞毒性。

结论

本工作提出了一种独特的纳米医学方法,能够精确递送化疗药物,并显著降低副作用,有望实现临床转化。

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