Glycosylation of human protein C affects its secretion, processing, functional activities, and activation by thrombin

B W Grinnell1, J D Walls, B Gerlitz

  • 1Department of Cardiovascular Research, Lilly Research Laboratories, Indianapolis, Indiana 46285.

Insights

Glycosylation of human protein C (HPC) significantly impacts its function, affecting secretion, processing, and anticoagulant activity. Modifying glycosylation sites can enhance enzyme efficiency and catalytic properties.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Proteomics

Background:

  • Human protein C (HPC) is a vital antithrombotic serine protease circulating as multiple glycoforms.
  • Glycosylation is a post-translational modification that can influence protein structure and function.

Purpose of the Study:

  • To investigate the specific roles of N-linked glycosylation sites in HPC function.
  • To determine how altering glycosylation patterns affects HPC secretion, processing, activity, and activation.

Main Methods:

  • Site-directed mutagenesis was used to eliminate individual N-linked glycosylation sites (Asn to Gln) in HPC.
  • Wild-type and mutant HPC were expressed in human and hamster cell lines.
  • Functional assays were performed to assess secretion, gamma-carboxylation, anticoagulant activity, substrate kinetics, inhibitor interactions, and activation rates.

Main Results:

  • N-linked glycosylation at position 97 is crucial for HPC secretion and influences glycosylation at Asn-329.
  • Glycosylation at position 248 affects intracellular processing of the Lys-Arg cleavage site.
  • Eliminating heavy chain glycosylation sites increased anticoagulant activity 2-3 fold, while Q313 showed 2.5-fold faster activation by thrombin-thrombomodulin due to enhanced affinity.

Conclusions:

  • Distinct N-linked glycosylation sites in HPC regulate specific protein properties, including secretion, processing, and activation.
  • Modifications to HPC glycosylation can enhance its catalytic efficiency and anticoagulant properties.
  • Understanding these structure-function relationships offers potential for therapeutic improvements.

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