阿霉素
癌症研究
纳米医学
细胞毒性
化学
癌症治疗
癌细胞
药物输送
癌症
脂质体
循环肿瘤细胞
靶向给药
癌症治疗
药品
药理学
癌症干细胞
流出
毒品携带者
化疗
干细胞
肿瘤细胞
旁观者效应
治疗效果
免疫疗法
常用化疗药物
脂筏
肿瘤微环境
细胞
微泡
作者
Xiaojuan Zhang,Ke Zhang,Yinmei Zhu,Shiyi Xu,Shiyu Li,Haojie Liu,Weilin Lv,Zixiang Xie,Yizhou Peter Huang,Xin Li,Nana Bie,Sheng Wang,Zhao Huang,Hongmei Zheng,Chuan Qin,Xiangliang Yang,Lu Gan,Tuying Yong
标识
DOI:10.1016/j.xcrm.2026.102591
摘要
Cancer stem cells (CSCs) and circulating tumor cells (CTCs) are pivotal contributors to tumor progression, metastasis, and therapeutic resistance. However, their effective eradication remains a significant hurdle in cancer treatments. Here, we report a mechanically optimized drug delivery platform based on ginsenoside Rh2-engineered tumor cell-derived microparticles (MP) loaded with doxorubicin (D@RM) for targeted elimination of CSCs and CTCs. Rh2 incorporation into MP modulates membrane lipid composition and disrupts lipid raft integrity, significantly reducing particle stiffness and enhancing deformability. These biomechanical changes promote tumor accumulation, deep tissue penetration, and clathrin-mediated uptake by CSCs. Concurrently, Rh2 suppresses drug efflux and stemness pathways, synergistically enhancing doxorubicin cytotoxicity toward CSCs. Moreover, D@RM efficiently bind and neutralize CTCs in circulation, thereby inhibiting metastatic dissemination. This study presents a versatile and translational strategy that integrates membrane mechanics and pharmacological modulation to improve the precision and efficacy of nanomedicine in cancer therapy.
科研通智能强力驱动
Strongly Powered by AbleSci AI