Programable Albumin-Hitchhiking Nanobodies Enhance the Delivery of STING Agonists to Potentiate Cancer Immunotherapy

  • Res Sq. 2024 May 8:rs.3.rs-3243545. doi: 10.21203/rs.3.rs-3243545/v1.
John Wilson  1 Blaise Kimmel  1 Karan Arora  1 Neil Chada  1 Vijaya Bharti  1 Alexander Kwiatkowski  1 Jonah Finklestein  1 Ann Hanna  2 Emily Arner  2 Taylor Sheehy  1 Lucinda Pastora  1 Jinming Yang  2 Hayden Pagendarm  1 Payton Stone  1 Brandie Taylor  2 Lauren Hubert  1 Kathern Gibson-Corley  2 Jody May John McLean  1 Jeffrey Rathmell  2 Ann Richmond  2 Wendy Rathmell  2 Justin Balko  2 Barbara Fingleton  2 Ebony Hargrove-Wiley  1
Affiliations
  • 1. Vanderbilt University.
  • 2. Vanderbilt University Medical Center.
Abstract

Stimulator of interferon genes (STING) is a promising target for potentiating antitumor immunity, but multiple pharmacological barriers limit the clinical utility, efficacy, and/or safety of STING agonists. Here we describe a modular platform for systemic administration of STING agonists based on nanobodies engineered for in situ hitchhiking of agonist cargo on serum albumin. Using site-selective bioconjugation chemistries to produce molecularly defined products, we found that covalent conjugation of a STING agonist to anti-albumin nanobodies improved pharmacokinetics and increased cargo accumulation in tumor tissue, stimulating innate immune programs that increased the infiltration of activated natural killer cells and T cells, which potently inhibited tumor growth in multiple mouse tumor models. We also demonstrated the programmability of the platform through the recombinant integration of a second nanobody domain that targeted programmed cell death ligand-1 (PD-L1), which further increased cargo delivery to tumor sites while also blocking immunosuppressive PD-1/PD-L1 interactions. This bivalent nanobody carrier for covalently conjugated STING agonists stimulated robust antigen-specific T cell responses and long-lasting immunological memory, conferred enhanced therapeutic efficacy, and was effective as a neoadjuvant treatment for improving responses to adoptive T cell transfer therapy. Albumin-hitchhiking nanobodies thus offer an enabling, multimodal, and programmable platform for systemic delivery of STING agonists with potential to augment responses to multiple immunotherapeutic modalities.

Keywords
STING; adoptive T cell transfer; albumin; cancer; immune checkpoint blockade; immunotherapy; nanobody.
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