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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
Abstract:
Fas ligand (FasL) and Fas receptor are members of the tumor necrosis factor (TNF) receptor and ligand family that play an important role in regulating apoptosis in normal physiology. Decoy receptor 3 (DcR3) is a novel member of the TNF receptor superfamily, which binds to and blocks the activities of the ligands FasL and LIGHT. We have demonstrated that DcR3 was degraded rapidly to a major circulating metabolic fragment after subcutaneous administration in primates and mice. This fragment was also generated in subcutaneous tissue homogenate in vitro. Mass spectrometry and N-terminal sequencing indicated that DcR3 was proteolytically cleaved between R218 and A219 in the primary sequence to yield the fragment DcR3(1-218). While retaining its ability to bind LIGHT and inhibit LIGHT-mediated activities, DcR3(1-218) no longer bound FasL and did not inhibit FasL-mediated apoptosis in vitro. The primary sequence of DcR3 was molecularly engineered, changing the arginine residue at position 218 to glutamine to generate an analog, DcR3(R218Q), which we termed FLINT (LY498919). We demonstrated that FLINT was more stable to proteolytic degradation in vitro and in vivo and maintained its activity against both soluble FasL and soluble LIGHT in vitro. As a result, the modification in the sequence of DcR3 to produce FLINT (LY498919) should result in a pharmacologically superior molecule in the therapeutic intervention of diseases in which the pathogenesis is linked to FasL-mediated apoptotic or inflammatory events.
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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