Novel Peptide-Based PD1 Immunomodulators Demonstrate Efficacy in Infectious Disease Vaccines and Therapeutics
Vinayaka Kotraiah1, Timothy W Phares1, Cecille D Browne2
1Explorations in Global Health (ExGloH), Leidos Inc., Frederick, MD, United States.
Abstract:
Many pathogens use the same immune evasion mechanisms as cancer cells. Patients with chronic infections have elevated levels of checkpoint receptors (e.g., programed cell death 1, PD1) on T cells. Monoclonal antibody (mAb)-based inhibitors to checkpoint receptors have also been shown to enhance T-cell responses in models of chronic infection. Therefore, inhibitors have the potential to act as a vaccine "adjuvant" by facilitating the expansion of vaccine antigen-specific T-cell repertoires. Here, we report the discovery and characterization of a peptide-based class of PD1 checkpoint inhibitors, which have a potent adaptive immunity adjuvant capability for vaccines against infectious diseases. Briefly, after identifying peptides that bind to the recombinant human PD1, we screened for in vitro efficacy in reporter assays and human peripheral blood mononuclear cells (PBMC) readouts. We first found the baseline in vivo performance of the peptides in a standard mouse oncology model that demonstrated equivalent efficacy compared to mAbs against the PD1 checkpoint. Subsequently, two strategies were used to demonstrate the utility of our peptides in infectious disease indications: (1) as a therapeutic in a bacteria-induced lethal sepsis model in which our peptides were found to increase survival with enhanced bacterial clearance and increased macrophage function; and (2) as an adjuvant in combination with a prophylactic malaria vaccine in which our peptides increased T-cell immunogenicity and the protective efficacy of the vaccine. Therefore, our peptides are promising as both a therapeutic agent and a vaccine adjuvant for infectious disease with a potentially safer and more cost-effective target product profile compared to mAbs. These findings are essential for deploying a new immunomodulatory regimen in infectious disease primary and clinical care settings.
Insights
New peptide-based inhibitors targeting programed cell death 1 (PD1) show promise as both therapeutics and vaccine adjuvants for infectious diseases, offering a potentially safer and more cost-effective alternative to antibody treatments.
Area of Science:
- Immunology
- Vaccinology
- Drug Discovery
Background:
- Pathogens and cancer cells share immune evasion strategies, including elevated checkpoint receptors like programed cell death 1 (PD1) on T cells during chronic infections.
- Monoclonal antibody (mAb)-based PD1 inhibitors enhance T-cell responses in chronic infection models, suggesting potential as vaccine adjuvants to broaden T-cell repertoires.
Purpose of the Study:
- To discover and characterize novel peptide-based inhibitors of PD1 with potential as vaccine adjuvants for infectious diseases.
- To evaluate the therapeutic and adjuvant capabilities of these peptide inhibitors in preclinical models.
Main Methods:
- Identified peptides binding to recombinant human PD1.
- Screened peptide efficacy in vitro using reporter assays and human peripheral blood mononuclear cells (PBMC).
- Assessed in vivo performance in a mouse oncology model, a bacteria-induced lethal sepsis model, and in combination with a malaria vaccine.
Main Results:
- Peptide inhibitors demonstrated efficacy comparable to anti-PD1 mAbs in an oncology model.
- In infectious disease models, peptides improved survival and bacterial clearance in sepsis and enhanced T-cell immunogenicity and vaccine efficacy against malaria.
- Peptides showed increased macrophage function in the sepsis model.
Conclusions:
- Peptide-based PD1 inhibitors are effective therapeutics for infectious diseases and potent vaccine adjuvants.
- These peptides offer a potentially safer and more cost-effective alternative to mAbs for infectious disease treatment and prevention.
- Findings support the development of peptide inhibitors as a novel immunomodulatory regimen for infectious diseases.
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