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Published on: February 9, 2019
Lipid raft-targeting artificial cascade nanozyme for enhanced anti-metastatic tumor therapy by cholesterol depletion
Ran Gao1, Xinqi Xu1, Yingzi Zhou1
1School of Traditional Chinese Medicine, Faculty of Medicine, Yangzhou University, Yangzhou 225009, PR China.
Abstract:
The migratory capacity and invasiveness of tumor cells are critically dependent on two key cellular features: lamellipodia formation at the leading edge of cells and the structural integrity of lipid rafts. Within the tumor microenvironment (TME), cholesterol (Ch), a core lipid raft constituent, is frequently observed to be overabundant. Excess Ch promotes cancer cell proliferation, enhances tumor cell motility, induces epithelial-mesenchymal transition (EMT), and elicits immunosuppressive effects. However, there remains a lack of targeted and effective strategies to normalize excess Ch levels in tumor lesions. Herein, we fabricated a cascade catalytic nanozyme (CHO@Cu/His-ZIF8) via in-situ mineralization of cholesterol oxidase (CHO) within L-histidine (His)-modified Cu-ZIF8. This nanozyme not only mimics the catalytic activity of natural peroxidase (POD) to achieve self-amplified reactive oxygen species (ROS) generation (CHO oxidizes Ch to produce H₂O₂; the catalase-like activity of the nanozyme simultaneously decomposes partial H₂O₂ to generate O₂, which further accelerates Ch consumption by CHO; meanwhile, the POD-like activity converts H₂O₂ into highly toxic •OH), but also degrades excess Ch to disrupt lipid rafts and lamellipodia, thereby inhibiting tumor cell migration and invasion. In vivo studies confirmed that CHO@Cu/His-ZIF8 effectively accumulated at tumor sites and exhibited excellent biocompatibility. Experiments in subcutaneous tumor models, lung metastasis models, and bilateral tumor models consistently demonstrated that CHO@Cu/His-ZIF8 exerts potent and highly efficient antitumor efficacy, especially in inhibiting tumor metastasis, highlighting its promising clinical translation potential.
Insights
This study introduces a novel nanozyme that degrades excess cholesterol in tumors. This treatment effectively inhibits cancer cell migration and invasion, showing promise for treating metastatic cancers.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Research
Background:
- Tumor cell migration and invasion depend on lamellipodia and lipid rafts.
- Tumor microenvironments often have excess cholesterol, promoting cancer progression and immunosuppression.
- Current strategies to normalize tumor cholesterol are limited.
Purpose of the Study:
- To develop a targeted nanozyme for normalizing cholesterol levels in tumors.
- To investigate the nanozyme's ability to inhibit tumor cell migration and invasion.
- To evaluate the nanozyme's antitumor efficacy in vivo.
Main Methods:
- Fabrication of a cascade catalytic nanozyme (CHO@Cu/His-ZIF8) using in-situ mineralization.
- Utilizing the nanozyme's peroxidase-like activity for reactive oxygen species generation.
- Assessing nanozyme accumulation, biocompatibility, and antitumor effects in various mouse tumor models.
Main Results:
- The nanozyme effectively degrades excess cholesterol, disrupting lipid rafts and lamellipodia.
- CHO@Cu/His-ZIF8 demonstrated potent inhibition of tumor cell migration and invasion.
- In vivo studies showed significant antitumor efficacy, particularly in inhibiting metastasis.
Conclusions:
- The developed nanozyme (CHO@Cu/His-ZIF8) offers a promising strategy for targeting tumor cholesterol.
- This approach effectively inhibits cancer cell motility and invasion.
- The nanozyme exhibits strong potential for clinical translation in cancer therapy, especially for metastasis.
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