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Acquired resistance to PD-L1 inhibition enhances a type I IFN-regulated secretory program in tumors

  • Yuhao Shi
  • , Amber McKenery
  • , Melissa Dolan
  • , Michalis Mastri
  • , James W. Hill
  • , Adam Dommer
  • , Sebastien Benzekry
  • , Mark Long
  • , Scott I. Abrams
  • , Igor Puzanov
  • , John M.L. Ebos
  • Roswell Park Cancer Institute
  • SUNY Buffalo
  • Aix-Marseille University

Research output: Contribution to journalArticlepeer-review

3 Scopus citations

Abstract

Therapeutic inhibition of programmed cell death ligand (PD-L1) is linked to alterations in interferon (IFN) signaling. Since IFN-regulated intracellular signaling can control extracellular secretory programs in tumors to modulate immunity, we examined IFN-related secretory changes in tumor cells following resistance to PD-L1 inhibition. Here we report an anti-PD-L1 treatment-induced secretome (PTIS) in tumor models of acquired resistance that is regulated by type I IFNs. These secretory changes can suppress activation of T cells ex vivo while diminishing tumor cell cytotoxi-city, revealing that tumor-intrinsic treatment adaptations can exert broad tumor-extrinsic effects. When reimplanted in vivo, resistant tumor growth can slow or stop when PTIS components are disrupted individually, or when type I IFN signaling machinery is blocked. Interestingly, genetic and therapeutic disruption of PD-L1 in vitro can only partially recapitulate the PTIS phenotype high-lighting the importance of developing in vivo-based resistance models to more faithfully mimic clinically-relevant treatment failure. Together, this study shows acquired resistance to immune-checkpoint inhibitors ‘rewires’ tumor secretory programs controlled by type I IFNs that, in turn, can protect from immune cell attack.

Original languageEnglish
Pages (from-to)521-559
Number of pages39
JournalEMBO Reports
Volume26
Issue number2
DOIs
StatePublished - Jan 27 2025

Keywords

  • IFN
  • Immune-checkpoint Subject Categories Cancer
  • Immunology
  • PD-L1
  • Resistance
  • Secretome
  • Signal Transduction

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