Inhibition of PHA-induced cell proliferation by polyclonal CD4 antibodies generated by DNA immunization

W Kasinrerk1, N Tokrasinwit

  • 1Department of Clinical Immunology, Faculty of Associated Medical Sciences, Chiang Mai University, Thailand. watchara@chiangmai.ac.th

Immunology Letters
|June 16, 1999
PubMed

Insights

DNA immunization effectively produced polyclonal CD4 antibodies, which suppressed T cell activation. These findings highlight DNA immunization as a viable method for generating antibodies against cell surface molecules like CD4.

Area of Science:

  • Immunology
  • Molecular Biology

Background:

  • The precise function of the CD4 molecule in T cell activation remains incompletely understood, despite its known role in binding to MHC class II molecules.
  • DNA immunization has emerged as a potent method for inducing immune responses.

Purpose of the Study:

  • To generate polyclonal antibodies specific for the CD4 molecule using DNA immunization.
  • To characterize the function of the CD4 molecule in T cell activation using the generated antibodies.

Main Methods:

  • DNA immunization was employed in rabbits using DNA encoding the CD4 protein (CD4-DNA).
  • Generated polyclonal CD4 antibodies were characterized for their recognition of recombinant and native CD4 proteins and their ability to block standard CD4 monoclonal antibodies.
  • Peripheral blood mononuclear cells (PBMC) were cultured with PHA and the produced CD4 antibodies to assess effects on cell proliferation.

Main Results:

  • Polyclonal CD4 antibodies were successfully generated, reaching titers up to 1:800.
  • The antibodies recognized both recombinant and native CD4 proteins and could block the binding of established CD4 monoclonal antibodies.
  • The polyclonal CD4 antibodies significantly suppressed PHA-induced PBMC proliferation.

Conclusions:

  • DNA immunization is a feasible approach for producing polyclonal antibodies against cell surface molecules.
  • The generated CD4 antibodies inhibit T cell activation, potentially through steric hindrance of CD4-TCR/CD3 association or interference with CD4-IL-16 binding.
  • These findings contribute to understanding CD4 molecule function in T cell signaling and immune responses.