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Published on: June 13, 2014
Pretargeted Mitochondrial Delivery of Organoarsenicals for Cancer Immunotherapy
Run Wang1,2, Yuyang Tian3, Xuliang Lu3
1School of Pharmacy, Fudan University, 826 Zhangheng Road, Shanghai 201203, China.
Abstract:
Mitochondrial targeting of organoarsenic compounds shows potential for cancer therapy, but current delivery approaches face significant challenges such as poor tumor selectivity and systemic toxicity, leading to dose-limiting side effects and reduced therapeutic efficacy. In this study, we present a subcellular pretargeted delivery strategy designed to selectively and efficiently accumulate organoarsenic therapeutics within tumor cell mitochondria. This approach leverages P-TCO-TPP, an alkaline phosphatase (ALP)-responsive small-molecule probe containing a phosphate-caged near-infrared merocyanine fluorophore, trans-cyclooctene (TCO), and triphenylphosphonium (TPP) groups. This enables the in situ self-assembly of mitochondria-targeting nanoparticles upon ALP-mediated dephosphorylation. These mitochondria-localized nanoparticles then rapidly capture tetrazine-arsenic conjugates (Tz-As) via bioorthogonal inverse electron demand Diels-Alder (IEDDA) reaction, resulting in a >5-fold increase in mitochondrial arsenic accumulation. This, in turn, leads to mitochondrial proteins labeling, thioredoxin reductase inhibition, severe mitochondrial dysfunction, and immunogenic cell death in tumor cells. Notably, this strategy achieves strong antitumor efficacy with minimal toxicity in both subcutaneous cervical HeLa and orthotopic breast 4T1 tumor models. Furthermore, combining this strategy with anti-PD-L1 immunotherapy induces complete 4T1 tumor regression in 40% of mice, extended survival, and nearly prevents pulmonary metastasis. This subcellular pretargeted strategy offers a robust platform for precision mitochondrial drug delivery, enhancing therapeutic potential of various cytotoxic agents in cancer immunotherapy.
Insights
This study introduces a new method for delivering cancer drugs directly to mitochondria within tumor cells. This targeted approach enhances drug effectiveness and reduces harmful side effects, improving cancer therapy outcomes.
Area of Science:
- Biomedical Engineering
- Nanotechnology
- Cancer Therapeutics
Background:
- Organoarsenic compounds show promise for cancer treatment but suffer from poor tumor selectivity and systemic toxicity.
- Current delivery methods limit therapeutic efficacy and cause dose-limiting side effects.
Purpose of the Study:
- To develop a subcellular pretargeted delivery strategy for efficient and selective accumulation of organoarsenic therapeutics in tumor cell mitochondria.
- To enhance the therapeutic potential of organoarsenic compounds by improving mitochondrial targeting and reducing toxicity.
Main Methods:
- Utilized P-TCO-TPP, an alkaline phosphatase (ALP)-responsive probe, for in situ nanoparticle self-assembly.
- Employed bioorthogonal inverse electron demand Diels-Alder (IEDDA) click chemistry for rapid capture of tetrazine-arsenic conjugates (Tz-As).
- Investigated mitochondrial arsenic accumulation, protein labeling, thioredoxin reductase inhibition, and cell death induction.
Main Results:
- Achieved >5-fold increase in mitochondrial arsenic accumulation.
- Demonstrated significant mitochondrial dysfunction and immunogenic cell death in tumor cells.
- Showcased strong antitumor efficacy with minimal toxicity in HeLa and 4T1 tumor models.
Conclusions:
- The subcellular pretargeted strategy enables precision mitochondrial drug delivery.
- Combination therapy with anti-PD-L1 immunotherapy led to complete tumor regression and extended survival in mice.
- This platform enhances the therapeutic potential of cytotoxic agents for cancer immunotherapy.
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