Searching for Peptide Inhibitors of T Regulatory Cell Activity by Targeting Specific Domains of FOXP3 Transcription

Teresa Lozano1, Noelia Casares1, Celia Martil-Otal1

  • 1Immunology and Immunotherapy, Center for Applied Medical Research (CIMA), University of Navarra, 31008 Pamplona, Spain.

Biomedicines
|March 6, 2021
PubMed

Insights

Synthetic peptides targeting the master regulator protein FOXP3 can inhibit T regulatory cell (Treg) activity. This approach offers a novel strategy for cancer immunotherapy by functionally inactivating Tregs instead of depleting them, potentially reducing autoimmunity.

Area of Science:

  • Immunology
  • Molecular Biology
  • Cancer Research

Background:

  • Cancer cells evade immune detection partly by recruiting T regulatory cells (Tregs) to the tumor microenvironment.
  • Current Treg depletion strategies lack specificity and risk autoimmunity.
  • Functional inactivation of Tregs, rather than depletion, is proposed as a safer therapeutic strategy.

Purpose of the Study:

  • To investigate the therapeutic potential of synthetic peptides targeting the Forkhead box protein 3 (FOXP3) transcription factor.
  • To disrupt the FOXP3 interactome and inhibit Treg immunosuppressive activity for cancer treatment.

Main Methods:

  • Utilized phage-displayed peptide libraries and synthetic peptides targeting FOXP3 fragments.
  • Studied the crystal structure of the FOXP3:NFAT complex to identify inhibitory peptides.
  • Optimized peptide properties (acetylation, cyclization, non-natural amino acids, cell-penetrating motifs) to enhance binding and activity.

Main Results:

  • Identified peptides, particularly those binding FOXP3's leucine zipper or C-terminal domain, inhibited Treg activity in vitro.
  • Optimized peptides demonstrated increased FOXP3 binding and Treg inhibitory capacity.
  • Several modified peptides exhibited in vivo antitumoral activity.

Conclusions:

  • Synthetic peptides can effectively inhibit intracellular FOXP3 protein-protein interactions.
  • These peptides impair Treg immunosuppressive functions, offering a new avenue for cancer immunotherapy.
  • Identified peptides serve as promising hit compounds for developing novel cancer immunotherapies.

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