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源自小分子同二聚体前药的动态纳米组装体用于药物激活及骨肉瘤的安全治疗。

Dynamic nanoassemblies derived from small-molecule homodimeric prodrugs for drug activation and safe osteosarcoma treatment.

作者信息

Wang Jian, Xu Peirong, Zhang Yeyong, Han Shuai, Wang Gongteng, Wang Hangxiang, Song Haihan, Li Shufeng

机构信息

Department of Orthopedics, Shanghai Pudong New Area People's Hospital, Shanghai, P.R. China.

Jinan Microecological Biomedicine Shandong Laboratory, Jinan, Shandong Province 250117, P.R. China.

出版信息

iScience. 2023 Jul 17;26(8):107409. doi: 10.1016/j.isci.2023.107409. eCollection 2023 Aug 18.

Abstract

Supramolecular prodrug self-assembly is a cost-effective and powerful approach for creating injectable anticancer nanoassemblies. Herein, we describe the self-assembly of small-molecule prodrug nanotherapeutics for tumor-restricted pharmacology that can be self-activated and independent of the exogenous stimuli. Covalent dimerization of the anticancer agent cabazitaxel via reactive oxygen species (ROS)- and esterase-activatable linkages produced the homodimeric prodrug diCTX, which was further coassembled with an ROS generator, dimeric dihydroartemisinin (diDHA). The coassembled nanoparticles were further refined in an amphiphilic matrix, making them suitable for administration. The ROS obtained from the coassembled diDHA synergized with intracellular esterase to activate the neighboring diCTX, which in turn induced potent cytotoxicity. In a preclinical orthotopic model of human osteosarcomas, nanoparticle administration exhibited durable antitumor efficacy. Furthermore, this smart, dual-responsive nanotherapeutic exhibited lower toxicity in animals than those of free drug combinations. We predict that this platform has great potential for further clinical translation.

摘要

超分子前药自组装是一种经济高效且强大的方法,用于制备可注射的抗癌纳米组装体。在此,我们描述了用于肿瘤靶向药理学的小分子前药纳米疗法的自组装,其可自我激活且不依赖外源性刺激。抗癌药物卡巴他赛通过活性氧(ROS)和酯酶可激活的连接进行共价二聚化,产生同二聚体前药二聚体卡巴他赛(diCTX),其进一步与ROS生成剂二聚体双氢青蒿素(diDHA)共组装。共组装的纳米颗粒在两亲性基质中进一步优化,使其适合给药。从共组装的diDHA获得的ROS与细胞内酯酶协同作用,激活相邻的diCTX,进而诱导强效细胞毒性。在人骨肉瘤的临床前原位模型中,纳米颗粒给药显示出持久的抗肿瘤功效。此外,这种智能的双响应纳米疗法在动物体内的毒性低于游离药物组合。我们预测该平台具有进一步临床转化的巨大潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c7bf/10404730/671e320ffea0/fx1.jpg

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