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In Vitro Differentiation of Human CD4+FOXP3+ Induced Regulatory T Cells (iTregs) from Naïve CD4+ T Cells Using a TGF-β-containing Protocol
Published on: December 30, 2016
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.
Abstract:
(1) Background: The ability of cancer cells to evade the immune system is due in part to their capacity to induce and recruit T regulatory cells (Tregs) to the tumor microenvironment. Strategies proposed to improve antitumor immunity by depleting Tregs generally lack specificity and raise the possibility of autoimmunity. Therefore, we propose to control Tregs by their functional inactivation rather than depletion. Tregs are characterized by the expression of the Forkhead box protein 3 (FOXP3) transcription factor, which is considered their "master regulator". Its interaction with DNA is assisted primarily by its interaction with other proteins in the so-called "Foxp3 interactome", which elicits much of the characteristic Treg cell transcriptional signature. We speculated that the disruption of such a protein complex by using synthetic peptides able to bind Foxp3 might have an impact on the functionality of Treg cells and thus have a therapeutic potential in cancer treatment. (2) Methods: By using a phage-displayed peptide library, or short synthetic peptides encompassing Foxp3 fragments, or by studying the crystal structure of the Foxp3:NFAT complex, we have identified a series of peptides that are able to bind Foxp3 and inhibit Treg activity. (3) Results: We identified some peptides encompassing fragments of the leuzin zipper or the C terminal domain of Foxp3 with the capacity to inhibit Treg activity in vitro. The acetylation/amidation of linear peptides, head-to-tail cyclization, the incorporation of non-natural aminoacids, or the incorporation of cell-penetrating peptide motifs increased in some cases the Foxp3 binding capacity and Treg inhibitory activity of the identified peptides. Some of them have shown antitumoral activity in vivo. (4) Conclusions: Synthetic peptides constitute an alternative to inhibit Foxp3 protein-protein interactions intracellularly and impair Treg immunosuppressive activity. These peptides might be considered as potential hit compounds on the design of new immunotherapeutic approaches against cancer.
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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