Phosphorylation of human CEACAM1-LF by PKA and GSK3β promotes its interaction with β-catenin

Weidong Hu1, Karine Bagramyan1, Supriyo Bhatticharya2

  • 1Department of Molecular Imaging and Therapy, Beckman Research Institute of City of Hope, Duarte, California, USA.

Insights

Human CEACAM1-LF phosphorylation by PKA and GSK3β, unlike in rodents, is regulated by a sequential mechanism. This finding reveals novel insights into CEACAM1-LF signaling and β-catenin interactions in human cells.

Area of Science:

  • Cell Adhesion Molecules
  • Signal Transduction
  • Molecular Biology

Background:

  • CEACAM1-LF is a cell adhesion molecule with a cytoplasmic domain containing ITIMs and a β-catenin binding site.
  • Rodent CEACAM1 phosphorylation affects bile acid transport and hepatosteatosis, but human CEACAM1 phosphorylation is less understood.
  • The phosphorylation of Ser508 in human CEACAM1, analogous to Ser503 in rodents, was investigated.

Purpose of the Study:

  • To elucidate the phosphorylation mechanisms of human CEACAM1-LF's cytoplasmic domain.
  • To determine the kinases involved in human CEACAM1-LF phosphorylation, particularly at Ser508.
  • To investigate the interplay between CEACAM1-LF phosphorylation and its interaction with β-catenin.

Main Methods:

  • NMR analysis of 15N labeled human CEACAM1 cytoplasmic domain peptide.
  • Incubation with various Ser/Thr kinases (PKC, GSK3β, PKA).
  • Mass spectrometry for phosphorylation site identification.

Main Results:

  • Human CEACAM1 Ser508 is phosphorylated by GSK3β, but not PKC, differing from rodent CEACAM1.
  • PKA phosphorylates Ser472, Ser461, and Ser512; Ser512 phosphorylation is required for GSK3β to phosphorylate Ser508.
  • PKA-mediated Ser512 phosphorylation enhances CEACAM1-LF association with β-catenin, influencing ITIM phosphorylation kinetics.

Conclusions:

  • Human CEACAM1-LF phosphorylation by GSK3β is dependent on prior PKA phosphorylation at Ser512.
  • PKA and GSK3β sequentially regulate human CEACAM1-LF signaling and its interaction with β-catenin.
  • These findings suggest a novel regulatory pathway for human CEACAM1-LF signal transduction distinct from rodent models.

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