Enzymatic cleavage of a CD4 immunoadhesin generates crystallizable, biologically active Fd-like fragments

S M Chamow1, D H Peers, R A Byrn

  • 1Department of Recovery Process Research and Development, Genentech, Inc., South San Francisco, California 94080.

Biochemistry
|October 23, 1990
PubMed

Insights

Researchers demonstrated that CD4 domains V1 and V2, crucial for HIV binding, fold similarly to immunoglobulin VL domains. This finding provides direct evidence supporting structural models of CD4 and aids in understanding HIV-1 interactions.

Area of Science:

  • Immunology
  • Structural Biology
  • Virology

Background:

  • CD4 is the primary receptor for human immunodeficiency virus (HIV) on cell surfaces.
  • CD4 comprises four extracellular domains homologous to immunoglobulin (Ig) VL domains, with V1 sufficient for HIV binding.
  • Previous structural models of CD4 domains were based on Ig VL domains, lacking direct experimental validation.

Purpose of the Study:

  • To obtain direct evidence that CD4 domains fold similarly to Ig VL domains.
  • To investigate the structural basis of HIV binding to CD4.
  • To produce and characterize functional CD4 domains for structural studies.

Main Methods:

  • Construction of CD4 immunoadhesins (fusion proteins of CD4 domains with Ig heavy chain).
  • Enzymatic cleavage of immunoadhesins with papain to yield Fd-like fragments containing CD4 domains V1 and V2.
  • Circular dichroism spectroscopy to analyze the folding and secondary structure of CD4 domains.

Main Results:

  • Papain cleavage released an Fd-like fragment containing CD4 domains V1 and V2.
  • This Fd-like fragment retained full binding capacity to HIV-1 gp120 and blocked HIV infection in vitro.
  • Circular dichroism indicated indistinguishable folding between CD4 domains in the Fd-like fragment, parent immunoadhesin, and Ig VL domains.

Conclusions:

  • The V1 and V2 domains of CD4 fold similarly to Ig VL domains, providing direct structural evidence.
  • The Fd-like fragment serves as a valuable tool for structural studies of CD4-HIV interactions.
  • This research validates existing structural models and deepens the understanding of HIV entry mechanisms.

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