光热治疗
吲哚青绿
化学
胶束
纳米载体
生物物理学
内化
癌症研究
药物输送
槲皮素
纳米技术
生物化学
材料科学
医学
细胞
病理
生物
有机化学
水溶液
抗氧化剂
物理化学
作者
Tangna Hao,Weiwei Jiang,Qian Lei,Xianxian Yang,Wenjing Li,Bingning Zhang,Yunan Li,Zhen Li
标识
DOI:10.1021/acs.molpharmaceut.4c00469
摘要
A significant impediment persists in developing multicomponent nanomedicines designed to dismantle the heat shock protein (HSP)-based protective mechanism of malignant tumors during photothermal therapy. Herein, well-defined PEGylated phospholipid micelles were utilized to coencapsulate quercetin (QUE, a natural anticancer agent and potent HSP inhibitor) and indocyanine green (ICG, a photothermal agent) with the aim of achieving synchronized and synergistic drug effects. The subsequent investigations validated that the tailored micellar system effectively enhanced QUE's water solubility and augmented its cellular internalization efficiency. Intriguingly, the compositional PEGylated phospholipids induced extraordinary endoplasmic reticulum stress, thereby sensitizing the tumor cells to QUE. Furthermore, QUE played a crucial role in inhibiting the stress-induced overexpression of HSP70, thereby augmenting the photothermal efficacy of ICG. In systemic applications, the proposed nanotherapeutics exhibited preferential accumulation within tumors and exerted notable tumoricidal effects against 4T1 xenograft tumors under 808 nm near-infrared irradiation, facilitated by prominent near-infrared fluorescence imaging-guided chemo–photothermal therapy. Therefore, our strategy for fabricating multicomponent nanomedicines emerges as a coordinated platform for optimizing antitumor therapeutic efficacy and offers valuable insights for diverse therapeutic modalities.
科研通智能强力驱动
Strongly Powered by AbleSci AI