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Published on: July 12, 2018
A Novel Tetravalent CD95/Fas Fusion Protein With Superior CD95L/FasL Antagonism
Isabell Lang1, Oliver Paulus1, Olena Zaitseva1
1Department of Internal Medicine II, Division of Molecular Internal Medicine, University Hospital Würzburg, Wurzburg, Germany.
Abstract:
Inhibition of CD95/Fas activation is currently under clinical investigation as a therapy for glioblastoma multiforme and preclinical studies suggest that disruption of the CD95-CD95L interaction could also be a strategy to treat inflammatory and neurodegenerative disorders. Besides neutralizing anti-CD95L/FasL antibodies, mainly CD95ed-Fc, a dimeric Fc fusion protein of the extracellular domain of CD95 (CD95ed), is used to prevent CD95 activation. In view of the fact that full CD95 activation requires CD95L-induced CD95 trimerization and clustering of the resulting liganded CD95 trimers, we investigated whether fusion proteins of the extracellular domain of CD95 with a higher valency than CD95ed-Fc have an improved CD95L-neutralization capacity. We evaluated an IgG1(N297A)-based tetravalent CD95ed fusion protein which was obtained by replacing the variable domains of IgG1(N297A) with CD95ed (CD95ed-IgG1(N297A)) and a hexavalent variant obtained by fusion of CD95ed with a TNC-Fc(DANA) scaffold (CD95ed-TNC-Fc(DANA)) promoting hexamerization. The established N297A and DANA mutations were used to minimize FcγR binding of the constructs under maintenance of neonatal Fc receptor (FcRn) binding. Size exclusion high-performance liquid chromatography indicated effective assembly of CD95ed-IgG1(N297A). More important, CD95ed-IgG1(N297A) was much more efficient than CD95ed-Fc in protecting cells from cell death induction by human and murine CD95L. Surprisingly, despite its hexavalent structure, CD95ed-TNC-Fc(DANA) displayed an at best minor improvement of the capacity to neutralize CD95L suggesting that besides valency, other factors, such as spatial organization and agility of the CD95ed domains, play also a role in neutralization of CD95L trimers by CD95ed fusion proteins. More studies are now required to evaluate the superior CD95L-neutralizing capacity of CD95ed-IgG1(N297A) in vivo.
Insights
Developing higher-valency CD95ed fusion proteins can improve CD95L neutralization for glioblastoma and neurodegenerative diseases. A tetravalent CD95ed-IgG1(N297A) construct demonstrated superior efficacy over dimeric CD95ed-Fc in blocking CD95 activation.
Area of Science:
- Immunology
- Neuroscience
- Oncology
Background:
- CD95/Fas activation inhibition is a therapeutic strategy for glioblastoma and neurodegenerative disorders.
- CD95-CD95L interaction disruption is key for treating these conditions.
- Current therapies include anti-CD95L antibodies and dimeric CD95ed-Fc fusion proteins.
Purpose of the Study:
- To investigate if higher-valency CD95ed fusion proteins enhance CD95L neutralization capacity.
- To evaluate tetravalent and hexavalent CD95ed fusion proteins for improved CD95 inhibition.
Main Methods:
- Constructed a tetravalent CD95ed-IgG1(N297A) fusion protein.
- Developed a hexavalent CD95ed-TNC-Fc(DANA) fusion protein.
- Utilized N297A and DANA mutations to minimize FcγR binding while maintaining FcRn binding.
- Assessed protein assembly via size exclusion HPLC.
- Compared neutralization efficacy against CD95L-induced cell death.
Main Results:
- Effective assembly of CD95ed-IgG1(N297A) confirmed by HPLC.
- CD95ed-IgG1(N297A) showed significantly higher efficiency than CD95ed-Fc in protecting cells from CD95L-induced death.
- The hexavalent CD95ed-TNC-Fc(DANA) showed only minor improvement in CD95L neutralization, despite its structure.
Conclusions:
- Higher valency, specifically tetravalent constructs like CD95ed-IgG1(N297A), can significantly improve CD95L neutralization.
- Factors beyond valency, such as spatial arrangement and flexibility of CD95ed domains, influence neutralization efficacy.
- Further in vivo studies are needed to confirm the therapeutic potential of CD95ed-IgG1(N297A).

