Mechanistic insights into complement pathway inhibition by CR1 domain duplication
Sandra Wymann1, Anup G Nair2, Svenja Ewert1
1CSL Biologics Research Centre, Swiss Institute for Translational and Entrepreneurial Medicine, Bern, Switzerland.
Insights
Engineered soluble complement receptor 1 (CR1) variants with duplicated domains show enhanced complement inhibition. Duplicating specific CR1 domains modulates activity across complement pathways, offering new therapeutic potential.
Area of Science:
- Immunology
- Biochemistry
Background:
- Complement receptor 1 (CR1) is a glycoprotein that binds complement fragments C3b and C4b.
- A soluble CR1 fragment, CSL040, acts as a potent complement inhibitor.
Purpose of the Study:
- To engineer soluble CR1 variants with enhanced or pathway-specific complement inhibitory potential.
- To investigate the impact of Long Homologous Repeat (LHR) domain duplications on CR1 function.
Main Methods:
- Generation of soluble CR1 variants with duplicated LHR domains (e.g., LHR-ABCC, LHR-BBCC).
- In vitro potency assays to assess complement inhibitory activity.
- Solution binding assays for C3b and C4b.
Main Results:
- LHR-ABCC showed enhanced alternative pathway inhibition compared to CSL040.
- LHR-BBCC exhibited reduced classical/lectin pathway activity but comparable alternative pathway activity.
- Duplication of the LHR-A domain had minimal impact on classical/lectin pathway inhibition.
Conclusions:
- CR1 domain duplication is a viable strategy for developing potent complement inhibitors.
- Specific domain duplications can modulate CR1 activity across different complement pathways.
- These variants offer insights into CR1-ligand interactions and potential therapeutic applications.
Abstract:
Complement receptor 1 (CR1) is a membrane glycoprotein with a highly duplicated domain structure able to bind multiple ligands such as C3b and C4b, the activated fragments of complement components C3 and C4, respectively. We have previously used our knowledge of this domain structure to identify CSL040, a soluble extracellular fragment of CR1 containing the long homologous repeat (LHR) domains A, B, and C. CSL040 retains the ability to bind both C3b and C4b but is also a more potent complement inhibitor than other recombinant CR1-based therapeutics. To generate soluble CR1 variants with increased inhibitory potential across all three complement pathways, or variants with activity skewed to specific pathways, we exploited the domain structure of CR1 further by generating LHR domain duplications. We identified LHR-ABCC, a soluble CR1 variant containing a duplicated C3b-binding C-terminal LHR-C domain that exhibited significantly enhanced alternative pathway inhibitory activity in vitro compared to CSL040. Another variant, LHR-BBCC, containing duplications of both LHR-B and LHR-C with four C3b binding sites, was shown to have reduced classical/lectin pathway inhibitory activity compared to CSL040, but comparable alternative pathway activity. Interestingly, multiplication of the C4b-binding LHR-A domain resulted in only minor increases in classical/lectin pathway inhibitory activity. The CR1 duplication variants characterized in these in vitro potency assays, as well as in affinity in solution C3b and C4b binding assays, not only provides an opportunity to identify new therapeutic molecules but also additional mechanistic insights to the multiple interactions between CR1 and C3b/C4b.
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