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In Vivo Immunogenicity Screening of Tumor-Derived Extracellular Vesicles by Flow Cytometry of Splenic T Cells
Published on: September 23, 2021
A combined "eat me/don't eat me" strategy based on extracellular vesicles for anticancer nanomedicine
Zakia Belhadj1, Bing He1, Hailiang Deng1
1Beijing Key Laboratory of Molecular Pharmaceutics and New Drug Delivery Systems, State Key Laboratory of Natural and Biomimetic Drugs, School of Pharmaceutical Sciences, Peking University, Beijing, China.
Abstract:
A long-term and huge challenge in nanomedicine is the substantial uptake and rapid clearance mediated by the mononuclear phagocyte system (MPS), which enormously hinders the development of nanodrugs. Inspired by the natural merits of extracellular vesicles, we therefore developed a combined "eat me/don't eat me" strategy in an effort to achieve MPS escape and efficient drug delivery. Methodologically, cationized mannan-modified extracellular vesicles derived from DC2.4 cells were administered to saturate the MPS (eat me strategy). Then, nanocarriers fused to CD47-enriched exosomes originated from human serum were administered to evade phagocytosis by MPS (don't eat me strategy). The nanocarriers were also loaded with antitumor drugs and functionalized with a novel homing peptide to promote the tumour tissue accumulation and cancer cell uptake (eat me strategy). The concept was proven in vitro as evidenced by the reduced endocytosis of macrophages and enhanced uptake by tumour cells, whereas prolonged circulation time and increased tumour accumulation were demonstrated in vivo. Specially, the strategy induced a 123.53% increase in tumour distribution compared to conventional nanocarrier. The study both shed light on the challenge overcoming of phagocytic evasion and provided a strategy for significantly improving therapeutic outcomes, potentially permitting active drug delivery via targeted nanomedicines.
Insights
This study introduces a novel "eat me/don't eat me" nanomedicine strategy to overcome mononuclear phagocyte system clearance. This approach enhances nanodrug circulation and tumor accumulation for improved cancer therapy.
Area of Science:
- Nanomedicine
- Biotechnology
- Immunology
Background:
- Mononuclear phagocyte system (MPS) uptake and rapid clearance pose significant challenges for nanodrug development.
- Extracellular vesicles (EVs) offer natural mechanisms for biological interaction and transport.
Purpose of the Study:
- To develop a combined "eat me/don't eat me" strategy using modified EVs to evade MPS and enhance targeted drug delivery.
- To improve nanodrug circulation time and tumor accumulation for effective cancer treatment.
Main Methods:
- Administration of cationized mannan-modified EVs to saturate MPS (eat me strategy).
- Fusion of nanocarriers with CD47-enriched exosomes to evade phagocytosis (don't eat me strategy).
- Loading nanocarriers with antitumor drugs and functionalizing with a homing peptide for tumor targeting.
Main Results:
- Reduced macrophage endocytosis and enhanced tumor cell uptake observed in vitro.
- Prolonged circulation time and increased tumor accumulation demonstrated in vivo.
- A 123.53% increase in tumor distribution compared to conventional nanocarriers was achieved.
Conclusions:
- The combined "eat me/don't eat me" strategy effectively overcomes MPS phagocytic evasion.
- This approach significantly improves nanodrug delivery and therapeutic outcomes for cancer treatment.
- The strategy provides a promising platform for developing targeted nanomedicines.
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