Human cell-adhesion molecule CD2 binds CD58 (LFA-3) with a very low affinity and an extremely fast dissociation rate

P A van der Merwe1, A N Barclay, D W Mason

  • 1MRC Cellular Immunology Unit, Sir William Dunn School of Pathology, University of Oxford, U.K.

Biochemistry
|August 23, 1994
PubMed

Insights

This study reveals that CD2-CD58 interactions have very low affinity and fast dissociation rates, challenging previous assumptions about cell adhesion molecule binding. These findings redefine our understanding of transient cell adhesion in T lymphocytes.

Area of Science:

  • Immunology
  • Molecular Biology
  • Biochemistry

Background:

  • CD2 is a T lymphocyte cell-adhesion molecule (CAM) in the immunoglobulin superfamily (IgSF).
  • CD2 mediates transient adhesion between T cells and antigen-presenting or target cells.
  • Reported CD2 ligands include CD58, CD48, and CD59, with varying reported affinities.

Purpose of the Study:

  • To definitively determine the affinity and kinetics of human CD2 interactions with CD58, CD48, and CD59.
  • To investigate discrepancies in reported binding affinities for CD2 ligands.
  • To clarify the nature of cell adhesion molecule (CAM) interactions.

Main Methods:

  • Utilized surface plasmon resonance (SPR) technology for precise binding measurements.
  • Employed soluble, recombinant forms of human CD2, CD58, CD48, and CD59.
  • Established conditions to detect very low affinity interactions (Kd approximately 0.5 mM).

Main Results:

  • Human CD2 directly bound to CD58, but not to CD48 or CD59.
  • CD2-CD58 interaction exhibited a very low affinity (Kd 9-22 microM).
  • The dissociation rate constant (koff) for CD2-CD58 was extremely fast (>= 4 s-1), with a calculated association rate constant (kon) of >= 400,000 M-1s-1.

Conclusions:

  • CAM interactions, including CD2-CD58, can possess very low affinities.
  • Extremely fast dissociation rate constants are characteristic of some CAM interactions.
  • These findings provide conclusive evidence for weak and transient CAM binding dynamics.

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