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DNA delivered by lipid nanoparticles induces CD8+ T cell–dependent antitumor responses and enhances anti–PD-L1 therapy
Seoyun Yum, Alba Rodríguez-Garcia, Joan Castellsagué, Marta Giménez-Alejandre, Guillem Colell, Salut Colell, Teresa Lobo-Jarne, Mark A. LaRue, Michael A. Minnier, Mustafa N. Yazicioglu, Rui Zhang, Xavier M. Anguela, Ali Nahvi, Matthew C. Walsh, Sean M. Armour, Sonia Guedan, Pedro J. Cejas
Seoyun Yum, Alba Rodríguez-Garcia, Joan Castellsagué, Marta Giménez-Alejandre, Guillem Colell, Salut Colell, Teresa Lobo-Jarne, Mark A. LaRue, Michael A. Minnier, Mustafa N. Yazicioglu, Rui Zhang, Xavier M. Anguela, Ali Nahvi, Matthew C. Walsh, Sean M. Armour, Sonia Guedan, Pedro J. Cejas
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Research Article Immunology Oncology

DNA delivered by lipid nanoparticles induces CD8+ T cell–dependent antitumor responses and enhances anti–PD-L1 therapy

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Abstract

Immune checkpoint inhibitors (ICIs) have reshaped the treatment landscape of several cancer types. However, their effectiveness remains limited to a subset of patients, in part due to insufficient preexisting antitumor immunity. In this study, we hypothesized that intracellular delivery of noncoding dsDNA encapsulated in lipid nanoparticles (DNA-LNPs), which have recently been demonstrated to activate both STING and absent in melanoma 2 (AIM2) pathways, could enhance antitumor immune responses and potentiate ICI therapy. Using multiple animal models of cancer, including hepatocellular carcinoma, acute myeloid leukemia, melanoma, and melanoma lung metastasis, we show that DNA-LNP treatment triggered strong cytokine induction and robust CD8+ T cell recruitment to the tumor microenvironment. This immune activation mediated potent CD8+ T cell–dependent antitumor effects and prolonged animal survival across multiple models. Notably, empty LNPs did not elicit potent cytokine elevation or antitumor effects, suggesting that these responses are triggered by the activation of cytosolic DNA-sensing pathways. Moreover, DNA-LNPs synergized with anti–PD-L1, substantially extending animal survival in both ICI-responsive and ICI-resistant tumor models. These findings position DNA-LNPs as a promising immunotherapy strategy, either alone or in combination with ICI therapies, to enhance antitumor immunity across diverse cancer types.

Authors

Seoyun Yum, Alba Rodríguez-Garcia, Joan Castellsagué, Marta Giménez-Alejandre, Guillem Colell, Salut Colell, Teresa Lobo-Jarne, Mark A. LaRue, Michael A. Minnier, Mustafa N. Yazicioglu, Rui Zhang, Xavier M. Anguela, Ali Nahvi, Matthew C. Walsh, Sean M. Armour, Sonia Guedan, Pedro J. Cejas

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Figure 2

DNA delivered by LNP mediates the antitumor effect in HCC mouse model.

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DNA delivered by LNP mediates the antitumor effect in HCC mouse model.
H...
HCC was induced by HDTVI of plasmids encoding GLuc, c-MET, β-catenin, and HSB2. (A–I) Mice received a single i.v. dose of DNA-LNP or empty LNP 3 weeks after HCC induction. Empty LNP contains an equivalent amount of empty LNP as 1 μg of DNA-LNP. (A) Serum cytokine levels 4 hours after dosing. (B) Survival of HCC-bearing mice. (C) Tumor growth indicated by serum GLuc activity. (D) Body weight loss measured over time. P value is compared at 1 day after LNP administration. (E) qRT-PCR analysis of oncogenes and ki67 at day 14 after treatment. (F) Quantification and (G) representative images (10×) of IHC analysis of oncogenes and Ki67 in liver sections at day 14 after treatment with 1 μg of DNA-LNP. (H) Volcano plot of differentially expressed genes and (I) GSEA in livers from mice treated with 1 μg of DNA-LNP as compared with vehicle at day 14 after treatment and measured by NanoString. (J and K) Mice received a single i.v. dose of 1 μg of DNA-LNP or DNA2-LNP 4 weeks after HCC induction. (J) Serum cytokine levels 4 hours after dosing. (K) Survival of HCC-bearing mice. Min-to-max whiskers are shown in the box and whiskers plot. Survival data were analyzed by log-rank (Mantel-Cox) tests, and other data were analyzed by 1-way ANOVA with Tukey’s multiple-comparison test. *P < 0.05, **P < 0.01, and ****P < 0.0001.

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