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Intratumoral aluminum hydroxide–anchored IL-12 drives potent antitumor activity by remodeling the tumor microenvironment
Sailaja Battula, Gregory Papastoitsis, Howard L. Kaufman, K. Dane Wittrup, Michael M. Schmidt
Sailaja Battula, Gregory Papastoitsis, Howard L. Kaufman, K. Dane Wittrup, Michael M. Schmidt
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Research Article Immunology Oncology

Intratumoral aluminum hydroxide–anchored IL-12 drives potent antitumor activity by remodeling the tumor microenvironment

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Abstract

IL-12 is a potent cytokine that can promote innate and adaptive anticancer immunity, but its clinical development has been limited by toxicity when delivered systemically. Intratumoral (i.t.) administration can expand the therapeutic window of IL-12 and other cytokines but is in turn limited by rapid drug clearance from the tumor, which reduces efficacy, necessitates frequent administration, and increases systemic accumulation. To address these limitations, we developed an anchored IL-12 designated ANK-101, composed of an engineered IL-12 variant that forms a stable complex with the FDA-approved vaccine adjuvant aluminum hydroxide (Alhydrogel). Following i.t. administration of murine ANK-101 (mANK-101) in early intervention syngeneic mouse tumors, the complex formed a depot that was locally retained for weeks as measured by IVIS or SPECT/CT imaging, while unanchored protein injected i.t. was cleared within hours. One or 2 i.t. injections of mANK-101 induced single-agent antitumor activity across a diverse range of syngeneic tumors, including models resistant to checkpoint blockade at doses where unanchored IL-12 had no efficacy. Local treatment with mANK-101 further induced regressions of noninjected lesions, especially when combined with systemic checkpoint blockade. Antitumor activity was associated with remodeling of the tumor microenvironment, including prolonged IFN-γ and chemokine expression, recruitment and activation of T and NK cells, M1 myeloid cell skewing, and increased antigen processing and presentation. Subcutaneous administration of ANK-101 in cynomolgus macaques was well tolerated. Together, these data demonstrate that ANK-101 has an enhanced efficacy and safety profile and warrants future clinical development.

Authors

Sailaja Battula, Gregory Papastoitsis, Howard L. Kaufman, K. Dane Wittrup, Michael M. Schmidt

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Figure 1

Phosphorylated IL-12-ABP proteins form stable complex with aluminum hydroxide and retain functional activity.

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Phosphorylated IL-12-ABP proteins form stable complex with aluminum hydr...
(A) Schematic of IL-12-ABP fusion protein forming complex with aluminum hydroxide particles through phosphorylated alum-binding peptide (ABP). (B) Average number of phosphate molecules per human or mouse IL-12-ABP fusion protein as measured by malachite green assay compared to wild-type IL-12 controls (mean of at least 4 independent experiments ± SD). (C) Percentage of Alhydrogel-complexed IL-12-ABP or wild-type IL-12 protein released into supernatant during incubation in Tris-buffered saline (TBS) or 40% serum and 1 mM phosphate, as measured by ELISA (n = 3, mean ± SD). Shown are human (left) and mouse (right) assays. (D) IFN-γ production measured by TR-FRET from activated human PBMCs (left), purified CD8+ T cells (center), or NK cells (right) following 3-day incubation with a titration of wild-type IL-12, free IL-12-ABP protein, or ANK-101 complex (mean of 5 donors ± SEM). (E) IL-12 signaling activity measured by HEK-Blue IL-12 assay of resuspended pellets of ANK-101 complex compared to supernatant following complex incubation in 1 mM phosphate and 20% serum for 24 hours (mean of 3 independent experiments ± SD).

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