Decoy receptor 3 (DcR3) is proteolytically processed to a metabolic fragment having differential activities against

Victor J Wroblewski1, Derrick R Witcher, Gerald W Becker

  • 1Department of Drug Disposition Development/Commercialization, Lilly Research Laboratories, Lilly Corporate Center, Indianapolis, IN 46285, USA. wroblewski_victor@lilly.com

Biochemical Pharmacology
|February 5, 2003
PubMed

Insights

Engineered decoy receptor 3 (DcR3), named FLINT, shows enhanced stability and maintains therapeutic activity against Fas ligand (FasL) and LIGHT. This modification offers a superior therapeutic option for FasL-related diseases.

Area of Science:

  • Immunology
  • Molecular Biology
  • Pharmacology

Background:

  • Fas ligand (FasL) and Fas receptor are key regulators of apoptosis.
  • Decoy receptor 3 (DcR3) is a TNF superfamily member that neutralizes FasL and LIGHT.
  • Native DcR3 undergoes rapid degradation into a fragment (DcR3(1-218)) with altered ligand binding.

Purpose of the Study:

  • To engineer a more stable and pharmacologically superior analog of DcR3.
  • To assess the stability and therapeutic potential of the engineered analog, FLINT (DcR3(R218Q)).

Main Methods:

  • Proteolytic cleavage site in DcR3 identified using mass spectrometry and N-terminal sequencing.
  • Site-directed mutagenesis to create DcR3(R218Q) (FLINT) by altering R218 to Q.
  • In vitro and in vivo assays to evaluate FLINT's stability and binding activity to FasL and LIGHT.

Main Results:

  • DcR3 is proteolytically cleaved at R218-A219, generating DcR3(1-218).
  • DcR3(1-218) loses FasL binding but retains LIGHT binding.
  • FLINT (DcR3(R218Q)) exhibits increased stability against degradation and retains binding to both FasL and LIGHT.

Conclusions:

  • Engineering DcR3 at the R218 position yields FLINT, a more stable molecule.
  • FLINT maintains therapeutic activity against FasL and LIGHT, offering improved pharmacological properties.
  • FLINT represents a promising therapeutic candidate for FasL-mediated inflammatory and apoptotic diseases.

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