Abstract
Abstract
Cancer immunotherapies have achieved meaningful clinical benefit but remain limited by systemic toxicities that restrict the use of potent immune modulators. CD47-targeting antibodies promote tumor cell phagocytosis but are hindered by hematologic toxicity, while IL-2 activates cytotoxic lymphocytes but induces broad, dose-limiting immune activation. Here, we engineered a reciprocally masked antibody-cytokine fusion (aCD47/IL-2c) designed for tumor-selective activation. In this construct, a CD47-specific antibody (aCD47) and an IL-2/IL-2 receptor complex (IL2c) sterically and functionally suppress each other via protease-cleavable linkers, preventing CD47 blockade and IL-2 receptor engagement in circulation while enabling protease-dependent unmasking within the tumor microenvironment. A human construct demonstrated masking and protease-dependent restoration of both CD47-SIRPα blockade and IL-2 signaling, with improved systemic tolerability in human hCD47/hSIRPα transgenic mice, supporting translational potential. A murine analog enabled mechanistic and efficacy studies in immunocompetent tumor models. The tolerability of mouse aCD47/IL-2c was improved in comparison to individual components. Antitumor activity required both CD47 blockade and IL-2 activity, and resulted in a robust antitumor efficacy, including in an immune checkpoint-resistant melanoma model. The robust antitumor efficacy was associated with inflammatory macrophage polarization and increased numbers of effector CD8⁺ T cells inside the tumor. Unlike conventional CD47 antibodies or IL-2 therapies, this approach enabled coordinated, tumor-localized activation of innate and adaptive immunity while limiting systemic exposure. Together, these data highlight reciprocal masking as a clinically relevant strategy to expand the therapeutic index of immune modulators constrained by systemic toxicity.