STING agonist-loaded, CD47/PD-L1-targeting nanoparticles potentiate antitumor immunity and radiotherapy for glioblastoma

Peng Zhang(Northwestern University), Aida Rashidi(Northwestern University), Junfei Zhao(Columbia University), Caylee Silvers(Northwestern University), Hanxiang Wang(Northwestern University), Brandyn Castro(Northwestern University), Abby Ellingwood(Northwestern University), Yu Han(Northwestern University), Aurora Lopez‐Rosas(Northwestern University), Μαρκέλλα Ζαννίκου(Northwestern University), Crismita Dmello(Northwestern University), Rebecca Levine(Northwestern University), Ting Xiao(Northwestern University), Álex Cordero(Northwestern University), Adam M. Sonabend(Northwestern University), Irina V. Balyasnikova(Northwestern University), Catalina Lee-Chang(Northwestern University), Jason Miska(Northwestern University), Maciej S. Lesniak(Northwestern University)
Nature Communications
March 23, 2023
Cited by 223Open Access
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Abstract

As a key component of the standard of care for glioblastoma, radiotherapy induces several immune resistance mechanisms, such as upregulation of CD47 and PD-L1. Here, leveraging these radiotherapy-elicited processes, we generate a bridging-lipid nanoparticle (B-LNP) that engages tumor-associated myeloid cells (TAMCs) to glioblastoma cells via anti-CD47/PD-L1 dual ligation. We show that the engager B-LNPs block CD47 and PD-L1 and promote TAMC phagocytic activity. To enhance subsequent T cell recruitment and antitumor responses after tumor engulfment, the B-LNP was encapsulated with diABZI, a non-nucleotidyl agonist for stimulator of interferon genes. In vivo treatment with diABZI-loaded B-LNPs induced a transcriptomic and metabolic switch in TAMCs, turning these immunosuppressive cells into antitumor effectors, which induced T cell infiltration and activation in brain tumors. In preclinical murine models, B-LNP/diABZI administration synergized with radiotherapy to promote brain tumor regression and induce immunological memory against glioma. In summary, our study describes a nanotechnology-based approach that hijacks irradiation-triggered immune checkpoint molecules to boost potent and long-lasting antitumor immunity against glioblastoma.


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