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Updated: Aug 28, 2025

Preparation and Characterization of Lipophilic Doxorubicin Pro-drug Micelles
Published on: August 2, 2016
Chemosensitivity enhanced by autophagy inhibition based on a polycationic nano-drug carrier
Na Li1, Shangcong Han1, Baohua Ma2
1Department of Pharmaceutics, School of Pharmacy, Qingdao University Qingdao China sunyong@qdu.edu.cn.
Abstract:
In recent years, with the increasing understanding of the role of autophagy in tumorigenesis and development, a steady stream of studies have demonstrated that both excessive induction and inhibition of autophagy could effectively improve the therapeutic efficacy against tumors during cytotoxic or molecularly targeted drug therapy. Among them, autophagy inhibition mediated by nanomaterials has become an appealing notion in nanomedicine therapeutics, since it can be exploited as an effective adjuvant in chemotherapy or as a potential anti-tumor agent. Herein, we constructed a pH-sensitive nanoplatform loaded with epirubicin (EPI) (mPEG-b-P(DPA-b-DMAEMA)/EPI), enabling effective autophagy inhibition in the process of tumor-targeting therapy and further sensitized the tumors to EPI. It was found that polycationic nanomicelles (PEDD-Ms) displayed specific localization in lysosomes after entering tumor cells and caused the impairment of lysosomal degradation capacity through lysosomal alkalization in a dose-dependent manner. HepG2 cells treated with PEDD-Ms displayed a large-scale accumulation of autophagosomes and LC3 (an autophagosome marker protein), and the degradation of the autophagy substrate p62 was also blocked, which indicated that these functional nanomicelles could significantly inhibit autophagy. Meanwhile, the typical morphological characteristics of autophagosomes were directly visualized by TEM. In vivo results also showed that the tumor-targeted and autophagy inhibition-associated nanoplatform therapy could effectively improve the therapeutic efficiency of EPI, which may be partially attributed to the fact that autophagy inhibition could enhance the sensitivity of tumor cells to EPI. Overall, we revealed the effect of polycationic nanomicelles on autophagic processes in tumor cells and explored their possible molecular mechanism, also considering the synergistic outcome between autophagy mediated by nanomaterials and chemotherapeutic drugs to improve the therapeutic effect on tumors.
Insights
This study developed a novel nanoplatform that inhibits autophagy in tumor cells, enhancing chemotherapy effectiveness. The nanomicelles target lysosomes, blocking degradation and sensitizing tumors to epirubicin (EPI) therapy.
Area of Science:
- Nanomedicine
- Cancer Therapy
- Autophagy Research
Background:
- Autophagy plays a dual role in cancer, with its inhibition showing therapeutic potential.
- Nanomaterials offer a promising strategy for modulating autophagy as an adjuvant or anti-tumor agent.
Purpose of the Study:
- To construct a pH-sensitive nanoplatform for tumor-targeted therapy and autophagy inhibition.
- To investigate the efficacy of epirubicin (EPI)-loaded nanomicelles in sensitizing tumors to chemotherapy.
Main Methods:
- Development of mPEG-b-P(DPA-b-DMAEMA)/EPI nanomicelles.
- Assessment of lysosomal localization and alkalization in HepG2 cells.
- Analysis of autophagosome accumulation (LC3) and p62 degradation.
- Transmission electron microscopy (TEM) for autophagosome visualization.
- In vivo studies to evaluate therapeutic efficacy.
Main Results:
- Polycationic nanomicelles (PEDD-Ms) localized in lysosomes, causing alkalization and impaired degradation.
- Significant accumulation of autophagosomes and LC3, with blocked p62 degradation, confirming autophagy inhibition.
- TEM visualized autophagosome morphology.
- In vivo therapy demonstrated improved EPI therapeutic efficiency due to autophagy inhibition.
Conclusions:
- The developed nanoplatform effectively inhibits autophagy in tumor cells via lysosomal impairment.
- Autophagy inhibition enhances tumor cell sensitivity to epirubicin.
- This nanoplatform shows synergistic potential with chemotherapy for improved cancer treatment.
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