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Published on: January 6, 2014
DNA-inorganic hybrid nanovaccine for cancer immunotherapy
Guizhi Zhu1, Yijing Liu1, Xiangyu Yang1
1Laboratory of Molecular Imaging and Nanomedicine, National Institute of Biomedical Imaging and Bioengineering (NIBIB), National Institutes of Health (NIH), Bethesda, MD 20892, USA. shawn.chen@nih.gov.
Abstract:
Cancer evolves to evade or compromise the surveillance of the immune system, and cancer immunotherapy aims to harness the immune system in order to inhibit cancer development. Unmethylated CpG dinucleotide-containing oligonucleotides (CpG), a class of potent adjuvants that activate the toll-like receptor 9 (TLR9) located in the endolysosome of many antigen-presenting cells (APCs), are promising for cancer immunotherapy. However, clinical application of synthetic CpG confronts many challenges such as suboptimal delivery into APCs, unfavorable pharmacokinetics caused by limited biostability and short in vivo half-life, and side effects associated with leaking of CpG into the systemic circulation. Here we present DNA-inorganic hybrid nanovaccines (hNVs) for efficient uptake into APCs, prolonged tumor retention, and potent immunostimulation and cancer immunotherapy. hNVs were self-assembled from concatemer CpG analogs and magnesium pyrophosphate (Mg2PPi). Mg2PPi renders hNVs resistant to nuclease degradation and thermal denaturation, both of which are demanding characteristics for effective vaccination and the storage and transportation of vaccines. Fluorophore-labeled hNVs were tracked to be efficiently internalized into the endolysosomes of APCs, where Mg2PPi was dissolved in an acidic environment and thus CpG analogs were exposed to hNVs. Internalized hNVs in APCs led to (1) elevated secretion of proinflammatory factors, and (2) elevated expression of co-stimulatory factors. Compared with molecular CpG, hNVs dramatically prolonged the tissue retention of CpG analogs and reduced splenomegaly, a common side effect of CpG. In a melanoma mouse model, two injections of hNVs significantly inhibited the tumor growth and outperformed the molecular CpG. These results suggest hNVs are promising for cancer immunotherapy.
Insights
DNA-inorganic hybrid nanovaccines (hNVs) show promise for cancer immunotherapy by improving CpG delivery and stability. These novel nanovaccines enhance immune cell activation and reduce side effects, leading to significant tumor growth inhibition in preclinical models.
Area of Science:
- Immunology
- Nanotechnology
- Oncology
Background:
- Cancer immunotherapy harnesses the immune system to fight cancer.
- Synthetic CpG oligonucleotides activate Toll-like receptor 9 (TLR9) in antigen-presenting cells (APCs), acting as potent adjuvants.
- Clinical use of CpG is limited by poor delivery, instability, and systemic side effects.
Purpose of the Study:
- To develop DNA-inorganic hybrid nanovaccines (hNVs) for enhanced cancer immunotherapy.
- To improve CpG delivery, stability, and reduce side effects associated with CpG administration.
Main Methods:
- Self-assembly of hNVs from CpG analogs and magnesium pyrophosphate (Mg2PPi).
- Evaluation of Mg2PPi's role in conferring nuclease resistance and thermal stability.
- Tracking hNVs' uptake into APCs and release of CpG analogs in acidic endolysosomes.
- Assessing APC activation via proinflammatory and co-stimulatory factor expression.
- Comparing hNVs with molecular CpG in a melanoma mouse model for tumor growth inhibition and side effect profiles.
Main Results:
- hNVs demonstrated efficient internalization into APCs and sustained release of CpG analogs.
- hNVs significantly enhanced secretion of proinflammatory and co-stimulatory factors by APCs.
- hNVs exhibited prolonged tissue retention and reduced splenomegaly compared to molecular CpG.
- Two hNV injections significantly inhibited melanoma tumor growth, outperforming molecular CpG.
Conclusions:
- DNA-inorganic hybrid nanovaccines (hNVs) offer a promising platform for cancer immunotherapy.
- hNVs overcome key limitations of synthetic CpG, improving delivery, stability, and efficacy.
- hNVs represent a potent strategy for cancer treatment with reduced adverse effects.
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