Identification of tumor-associated, MHC class II-restricted phosphopeptides as targets for immunotherapy

Florence R Depontieu1, Jie Qian, Angela L Zarling

  • 1Department of Surgery, The Johns Hopkins University School of Medicine, Baltimore, MD 21231, USA.

Insights

Researchers discovered that human MHC II molecules present phosphopeptides, enabling CD4(+) T cells to recognize them. This finding reveals new targets for cancer immunotherapy by identifying specific phosphopeptide "fingerprints" in tumors.

Area of Science:

  • Immunology
  • Oncology
  • Biochemistry

Background:

  • CD4(+) T cell activation is crucial for antitumor immunity and cancer immunotherapy optimization.
  • Phosphopeptides, tumor-derived epitopes from phosphorylated proteins, are emerging targets.
  • The presentation of phosphopeptides by human MHC II for CD4(+) T cell recognition was previously uncharacterized.

Purpose of the Study:

  • To investigate the presentation of phosphopeptides by human MHC II molecules.
  • To identify and characterize MHC II-associated phosphopeptides in cancer.
  • To demonstrate CD4(+) T cell recognition of MHC II-restricted phosphopeptides.

Main Methods:

  • Assessed CD4(+) T cell specificity for phosphoresidues using B-Raf variants.
  • Analyzed human MHC II-associated phosphopeptides from melanoma and B lymphoblastoid cell lines.
  • Employed affinity isolation, biochemical enrichment, mass spectrometry, and comparative analysis.

Main Results:

  • Demonstrated CD4(+) T cells can discriminate phosphoresidues.
  • Characterized 175 HLA-DR-associated phosphopeptides, many linked to cancer-related proteins.
  • Identified cell type-specific phosphopeptide "fingerprints" in melanomas and B cells.
  • Generated CD4(+) T cells specific for a phospho-MART-1 peptide that recognized melanoma cells.

Conclusions:

  • Established the existence of MHC II-restricted phosphopeptides recognized by human CD4(+) T cells.
  • Highlighted phosphopeptides as potential novel targets for cancer immunotherapy.
  • Suggests the utility of phosphopeptide "fingerprints" for cell type-specific cancer targeting.

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