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Published on: June 12, 2017
In Situ Autophagy Disruption Generator for Cancer Theranostics
Huijuan Zhang1,2,3, Yanping Ren1, Fang Cao1
1School of Pharmaceutical Sciences , Zhengzhou University , Zhengzhou 450001 , China.
Abstract:
Cancer remains a serious clinical disease awaiting new effective treatment strategies. Autophagy modulation has emerged as a novel and promising pharmacologic target critical to future drug development and anti-cancer therapy applications. Herein, we constructed an in situ autophagy disruption generator to break the balance of autophagy flow for tumor-targeting therapy. Hollow mesoporous manganese trioxide (Mn2O3) nanoparticles (NPs) were synthesized and conjugated with hyaluronic acid (HA) to form tumor-targeting drug carriers. Then, traditional autophagy inhibitor hydroxychloroquine (HCQ) was loaded into the hollow core of HA-Mn2O3, to form a multifunctional theranostics platform (HA-Mn2O3/HCQ). This nanoplatform displayed specific localization and retention in lysosomes after entering tumor cells. The synchronous release of HCQ and manganese ion (Mn2+) induced lysosomal alkalization and osmotic pressure elevation. Significantly greater lysosomal deacidification and autophagy blockade effect emerged after treatment by this nanoplatform, with in vitro tumor inhibition rate of 92.2%. Imaging experiment proved that it could selectively deliver HCQ to tumor sites and further degrade to realize simultaneous release of Mn2+ and HCQ. Micromorphological and immunofluorescence analysis demonstrated that in situ high concentrations of these two substances would achieve effective autophagy blockade. Pharmacodynamics test showed that this nanogenerator displayed the best therapeutic efficacy with 5.08-fold tumor inhibition ratio compared with the HCQ group. Moreover, the generated Mn2+ can be used as T1 contrast agent for visualizing tumor lesions and monitoring therapeutic effects. Overall, the as-made multifunctional drug-delivery system might provide a promising platform for cancer theranostics upon in situ autophagy disruption.
Insights
This study developed a novel nanoplatform that disrupts autophagy in cancer cells, significantly enhancing tumor inhibition. The system delivers hydroxychloroquine and manganese ions, offering a promising new strategy for cancer theranostics.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Oncology
Background:
- Cancer treatment requires novel strategies, with autophagy modulation emerging as a key therapeutic target.
- Autophagy plays a critical role in cancer progression and drug resistance.
Purpose of the Study:
- To construct an in situ autophagy disruption generator for tumor-targeting therapy.
- To develop a multifunctional theranostics platform for enhanced cancer treatment.
Main Methods:
- Synthesized hollow mesoporous manganese trioxide (Mn2O3) nanoparticles conjugated with hyaluronic acid (HA).
- Loaded hydroxychloroquine (HCQ) into HA-Mn2O3 to create the HA-Mn2O3/HCQ nanoplatform.
- Evaluated in vitro tumor inhibition, lysosomal deacidification, autophagy blockade, and in vivo therapeutic efficacy.
Main Results:
- The nanoplatform achieved specific localization in tumor cell lysosomes, inducing synchronous release of HCQ and Mn2+.
- Demonstrated significant lysosomal deacidification and autophagy blockade, with an in vitro tumor inhibition rate of 92.2%.
- Showed a 5.08-fold higher tumor inhibition ratio compared to HCQ alone, with Mn2+ serving as a T1 contrast agent for imaging.
Conclusions:
- The multifunctional drug-delivery system effectively disrupts autophagy in situ for targeted cancer therapy.
- The nanoplatform shows promise as a theranostic tool for visualizing tumors and monitoring treatment response.
- This approach offers a novel platform for developing advanced anti-cancer therapeutics.
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