Structural basis of the dynamic human CEACAM1 monomer-dimer equilibrium

Amit K Gandhi1, Zhen-Yu J Sun2, Walter M Kim3

  • 1Division of Gastroenterology, Department of Medicine, Brigham and Women's Hospital, Harvard Medical School, Boston, MA, USA. agandhi2@bwh.harvard.edu.

Communications Biology
|March 20, 2021
PubMed

Insights

Structural insights into human CEACAM1 (carcinoembryonic antigen-related cell adhesion molecule 1) reveal how its IgV domain transitions between monomeric and dimeric states. This flexibility is key for CEACAM1

Area of Science:

  • Structural biology
  • Molecular and cell biology
  • Biochemistry

Background:

  • Human CEACAM1 (carcinoembryonic antigen-related cell adhesion molecule 1) is a cell adhesion molecule crucial for various biological functions.
  • CEACAM1 function relies on homodimerization or heterodimerization via its IgV domain with ligands like CEACAM5, TIM-3, PD-1, and pathogens.
  • Limited structural data exists on the monomer-dimer transitions of CEACAM1, a critical step for its activity.

Purpose of the Study:

  • To elucidate the structural mechanisms governing human CEACAM1 IgV domain monomer-dimer transitions.
  • To characterize the atomic resolution structures of CEACAM1 monomeric, dimeric, and transition states.
  • To understand the role of the GFCC' face in CEACAM1 dimerization and ligand interactions.

Main Methods:

  • Site-directed mutagenesis of key residues (V39, I91, N97, E99) in the hCEACAM1 IgV domain.
  • Differential scanning fluorimetry (DSF) to study protein stability and conformational changes.
  • Multi-angle light scattering (MALS) to determine oligomeric states in solution.
  • X-ray crystallography and Nuclear Magnetic Resonance (NMR) spectroscopy for atomic-resolution structural determination and dynamics.

Main Results:

  • Atomic resolution structures of hCEACAM1 homodimeric, monomeric, and transition states were determined.
  • NMR assignment of wildtype (WT) hCEACAM1 IgV dimer and N97A mutant monomer provided insights into conformational behavior in solution.
  • The GFCC' face of the IgV domain exhibits flexibility, crucial for regulating dimer formation.
  • Mutagenesis studies identified specific residues influencing monomer-homodimer exchange.

Conclusions:

  • The study provides the first atomic-resolution description of hCEACAM1 IgV domain monomer-dimer transitions.
  • The flexibility of the GFCC' face is a key determinant for hCEACAM1 homodimerization and selective heterodimerization.
  • Understanding these structural dynamics is vital for deciphering CEACAM1's role in cellular processes and disease.

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