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Overcoming lung cancer immunotherapy resistance by combining nontoxic variants of IL-12 and IL-2
Brendan L. Horton, Alicia D. D’Souza, Maria Zagorulya, Chloe V. McCreery, Gita C. Abhiraman, Lora Picton, Allison Sheen, Yash Agarwal, Noor Momin, K. Dane Wittrup, Forest M. White, K. Christopher Garcia, Stefani Spranger
Brendan L. Horton, Alicia D. D’Souza, Maria Zagorulya, Chloe V. McCreery, Gita C. Abhiraman, Lora Picton, Allison Sheen, Yash Agarwal, Noor Momin, K. Dane Wittrup, Forest M. White, K. Christopher Garcia, Stefani Spranger
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Research Article Immunology

Overcoming lung cancer immunotherapy resistance by combining nontoxic variants of IL-12 and IL-2

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Abstract

Engineered cytokine–based approaches for immunotherapy of cancer are poised to enter the clinic, with IL-12 being at the forefront. However, little is known about potential mechanisms of resistance to cytokine therapies. We found that orthotopic murine lung tumors were resistant to systemically delivered IL-12 fused to murine serum albumin (MSA, IL12-MSA) because of low IL-12 receptor (IL-12R) expression on tumor-reactive CD8+ T cells. IL2-MSA increased binding of IL12-MSA by tumor-reactive CD8+ T cells, and combined administration of IL12-MSA and IL2-MSA led to enhanced tumor-reactive CD8+ T cell effector differentiation, decreased numbers of tumor-infiltrating CD4+ regulatory T cells, and increased survival of lung tumor–bearing mice. Predictably, the combination of IL-2 and IL-12 at therapeutic doses led to significant dose-limiting toxicity. Administering IL-12 and IL-2 analogs with preferential binding to cells expressing Il12rb1 and CD25, respectively, led to a significant extension of survival in mice with lung tumors while abrogating dose-limiting toxicity. These findings suggest that IL-12 and IL-2 represent a rational approach to combination cytokine therapy whose dose-limiting toxicity can be overcome with engineered cytokine variants.

Authors

Brendan L. Horton, Alicia D. D’Souza, Maria Zagorulya, Chloe V. McCreery, Gita C. Abhiraman, Lora Picton, Allison Sheen, Yash Agarwal, Noor Momin, K. Dane Wittrup, Forest M. White, K. Christopher Garcia, Stefani Spranger

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Figure 1

KP lung tumors are resistant to IL12-MSA monotherapy.

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KP lung tumors are resistant to IL12-MSA monotherapy.
(A and B) Mice wer...
(A and B) Mice were inoculated with KP lung or flank tumors and treated intravenously with IL12-MSA on days 7 and 14 of tumor growth. (A) Survival of mice with KP lung tumors, control n = 7, IL12-MSA n = 9, pooled data from 2 independent experiments. Log-rank test. (B) Survival of mice with KP flank tumors, control n = 6, IL12-MSA n = 6, pooled data from 2 independent experiments. Log-rank test. (C–F) Mice were inoculated with KP.SIY lung or flank tumors, treated intravenously with IL12-MSA on day 7, and analyzed on day 10 of tumor growth. (C) Absolute number of SIY-reactive CD8+ T cells from TdLN, spleen, or tumor. (D) CD25 expression by SIY-reactive CD8+ T cells from TdLN, spleen, or tumor. (E) GzmB expression by SIY-reactive CD8+ T cells from TdLN, spleen, or tumor. (C–E) n = 12, pooled data from 4 independent experiments, 1-way ANOVA. (F) TCF-1 and TIM-3 expression by SIY-reactive CD8+ T cells from TdLN, spleen, or tumor. (G) The percentage of SIY-reactive CD8+ T cells that are PD-1+TCF-1+. (F and G) n = 6, pooled data from 2 independent experiments, 2-way ANOVA. Comparisons in F are between control and IL12-MSA–treated samples. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001. TdLN, tumor-draining lymph node.

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ISSN 2379-3708

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