Checkpoint inhibition through small molecule-induced internalization of programmed death-ligand 1

  • Nat Commun. 2021 Feb 22;12(1):1222. doi: 10.1038/s41467-021-21410-1.
Jang-June Park  1 Emily P Thi  1 Victor H Carpio  1 Yingzhi Bi  1 Andrew G Cole  1 Bruce D Dorsey  1 Kristi Fan  1 Troy Harasym  1 Christina L Iott  1 Salam Kadhim  1 Jin Hyang Kim  1 Amy C H Lee  1 Duyan Nguyen  1 Bhavna S Paratala  1 Ruiqing Qiu  1 Andre White  2 Damodharan Lakshminarasimhan  2 Christopher Leo  2 Robert K Suto  2 Rene Rijnbrand  1 Sunny Tang  1 Michael J Sofia  1 Chris B Moore  3
Affiliations
  • 1. Arbutus Biopharma Inc, Warminster, PA, USA.
  • 2. Xtal BioStructures Inc., Natick, MA, USA.
  • 3. Arbutus Biopharma Inc, Warminster, PA, USA. [email protected].
Abstract

Programmed death-ligand 1 is a glycoprotein expressed on antigen presenting cells, hepatocytes, and tumors which upon interaction with programmed death-1, results in inhibition of antigen-specific T cell responses. Here, we report a mechanism of inhibiting programmed death-ligand 1 through small molecule-induced dimerization and internalization. This represents a mechanism of checkpoint inhibition, which differentiates from anti-programmed death-ligand 1 antibodies which function through molecular disruption of the programmed death 1 interaction. Testing of programmed death ligand 1 small molecule inhibition in a humanized mouse model of colorectal Cancer results in a significant reduction in tumor size and promotes T cell proliferation. In addition, antigen-specific T and B cell responses from patients with chronic hepatitis B Infection are significantly elevated upon programmed death ligand 1 small molecule inhibitor treatment. Taken together, these data identify a mechanism of small molecule-induced programmed death ligand 1 internalization with potential therapeutic implications in oncology and chronic viral infections.

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