Characterization of a domain of a human type I interferon receptor protein involved in ligand binding

P Eid1, M G Tovey

  • 1Laboratory of Viral Oncology, CNRS, Villejuif, France.

Insights

Monoclonal antibodies helped map the type I interferon receptor binding site. A neutralizing antibody identified a key region, localizing the interferon binding domain to amino acids 23-229.

Area of Science:

  • Immunology
  • Molecular Biology
  • Virology

Background:

  • Type I interferons are crucial for antiviral and antiproliferative responses.
  • The type I interferon receptor mediates cellular responses to interferons.
  • Characterizing the interferon binding site is essential for understanding receptor function.

Purpose of the Study:

  • To delineate the interferon binding site on the type I interferon receptor.
  • To identify specific regions involved in interferon binding and receptor activation.
  • To differentiate between antibody binding and functional activity at the receptor level.

Main Methods:

  • Utilized two monoclonal antibodies (mAbs) targeting distinct epitopes of the type I interferon receptor.
  • Employed radiolabeled interferons (IFN-alpha 2, IFN-alpha 8) to assess binding inhibition.
  • Performed immunoprecipitation, surface iodination, and cross-linking experiments to analyze protein interactions.

Main Results:

  • A neutralizing mAb (64G12) inhibited interferon binding and biological activity, recognizing a 105 kDa protein.
  • A non-neutralizing mAb (34F10) bound the receptor but did not inhibit interferon activity, recognizing a 110 kDa protein.
  • Cross-linking studies indicated the interferon binding domain is located between amino acids 23 and 229 of the extracellular domain.

Conclusions:

  • The study successfully localized the interferon binding domain within a specific region of the type I interferon receptor.
  • Distinct epitopes recognized by neutralizing and non-neutralizing antibodies provide insights into receptor activation mechanisms.
  • These findings contribute to a deeper understanding of type I interferon signaling pathways.

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