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Role of the C3b-binding site on C4b-binding protein in regulating classical pathway C5 convertase
Nenoo Rawal1, Michael K Pangburn
1Department of Biochemistry, University of Texas Health Science Center, 11937 US Highway 271, Tyler, TX 75708-3154, USA. nenoo.rawal@uthct.edu
Insights
C4b-binding protein (C4BP) regulates the classical pathway C5 convertase similarly to the C3 convertase. Additional C3b molecules are essential for C5 convertase formation but do not influence C4BP regulation.
Area of Science:
- Immunology
- Complement System Biology
Background:
- The complement system is crucial for innate and adaptive immunity.
- Classical pathway C5 convertase formation is a key step in complement-mediated inflammation and cell lysis.
- C4b-binding protein (C4BP) is a key regulator of the classical complement pathway.
Purpose of the Study:
- To investigate the regulatory role of C4b-binding protein (C4BP) on the classical pathway C5 convertase.
- To compare the regulatory mechanisms of C4BP on C5 convertase versus its precursor, the C3 convertase.
- To determine the influence of additional C3b molecules on C4BP regulation of C5 convertase.
Main Methods:
- Determination of IC50 values for C4BP inhibition of C5 convertase formation and decay.
- Assessing cofactor activity of C4BP on surface-bound C4b alone and complexed with C3b.
- Analysis of binding interactions between C4BP and complement-coated cells using surface plasmon resonance.
Main Results:
- C4BP exhibited similar IC50 values for regulating C5 convertase and C3 convertase.
- No difference in C4BP cofactor activity was observed with C4b alone or C4b complexed with C3b.
- C4BP binding affinity to complement-coated cells was not altered by increasing C4b or C3b density.
Conclusions:
- C4BP regulates the classical pathway C5 convertase through mechanisms similar to those of the C3 convertase.
- Additional C3b molecules, while necessary for C5 convertase formation, do not play a role in C4BP-mediated regulation.
- C4BP effectively prevents classical pathway C3 convertase formation in the fluid phase at physiological concentrations.
Abstract:
A high affinity C5 convertase is generated when a C3 convertase deposits additional C3b molecules on and around itself thereby switching the substrate specificity of C3 convertase from C3 to C5. In the present study the role of the additional C3b molecules in influencing the regulation of classical pathway C5 convertase by C4b-binding protein (C4BP) was examined and compared to its precursor, the C3 convertase. Determination of IC(50) for inhibiting formation of the high affinity C5 convertase and for enhancing its decay (72 and 20 nM) were found to be similar to those obtained for the surface-bound C3 convertase (35 and 11 nM). No difference was observed in the cofactor activity of C4BP for surface-bound C4b alone or when in complex with C3b. Analysis of binding interactions between C4BP and EAC1,C4b cells revealed an average apparent dissociation constant (12 nM) similar to that obtained with EAC1,C4b cells with C3b on them (11 nM). Increasing the C4b or C3b density on the cell surface did not alter the affinity of C4BP. The data suggest that C4BP regulates the C5 convertase by mechanisms similar to those observed for the C3 convertase. Since the IC(50) for inhibiting formation of the soluble C3 convertase (5 nM) is 50-80-fold below the normal serum concentration of C4BP (250-400 nM), C4BP in blood effectively prevents formation of classical pathway C3 convertase in the fluid phase. Although deposition of additional C3b molecules is necessary to convert a C3 convertase to a high affinity C5 convertase, the additional C3b molecules play no role in the regulation of C5 convertase by C4BP.
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