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Updated: Jul 29, 2026

Measuring the 50% Haemolytic Complement (CH50) Activity of Serum
Published on: March 30, 2010
Molecular dissection of interactions between components of the alternative pathway of complement and decay
Claire L Harris1, Rachel J M Abbott, Richard A Smith
1Complement Biology Group, Department of Medical Biochemistry and Immunology, School of Medicine, Cardiff University, Heath Park, Cardiff, CF14 4XN, United Kingdom. harriscl@cardiff.ac.uk
Insights
Decay accelerating factor (DAF) regulates the complement system by binding to C3b and factor B. DAF
Area of Science:
- Immunology
- Biochemistry
Background:
- The alternative complement pathway is crucial for innate immunity but requires tight regulation.
- Decay accelerating factor (DAF; CD55) is a key regulator that prevents uncontrolled complement activation.
Purpose of the Study:
- To elucidate the molecular interactions between DAF and complement components C3b and factor B.
- To understand how DAF regulates the stability and decay of complement convertases.
Main Methods:
- Surface plasmon resonance (SPR) was used to quantify binding affinities (K(D)) between DAF and complement proteins.
- Kinetic analysis of C3b-factor B interactions and their regulation by DAF.
Main Results:
- DAF exhibited low-affinity binding to C3b and factor B in the absence of Mg(2+).
- Mg(2+) significantly enhanced DAF binding to the Bb subunit of factor B.
- DAF efficiently accelerated the decay of the activated C3bBb convertase but not the proenzyme C3bB.
- DAF's interaction with Bb is a key mechanism for accelerating convertase decay.
Conclusions:
- DAF's regulation of the alternative complement pathway is mediated by differential binding affinities to complement components.
- DAF's ability to destabilize the C3bBb convertase is crucial for preventing excessive complement-mediated damage.
- Understanding these interactions provides insights into complement regulation and potential therapeutic strategies.
Abstract:
The complement regulatory protein decay accelerating factor (DAF; CD55), inhibits the alternative complement pathway by accelerating decay of the convertase enzymes formed by C3b and factor B. We show, using surface plasmon resonance, that in the absence of Mg(2+), DAF binds C3b, factor B, and the Bb subunit with low affinity (K(D), 14 +/- 0.1, 44 +/- 10, and 20 +/- 7 microm, respectively). In the presence of Mg(2+), DAF bound Bb or the von Willebrand factor type A subunit of Bb with higher affinities (K(D), 1.3 +/- 0.5 and 2.2 +/- 0.1 microm, respectively). Interaction with the proenzyme C3bB was investigated by flowing factor B across a C3b-coated surface in the absence of factor D. The dissociation rate was dependent on the time of incubation, suggesting that a time-dependent conformational transition stabilized the C3b-factor B interaction. Activation by factor D (forming C3bBb) increased the complex half-life; however, the enzyme became susceptible to rapid decay by DAF, unlike the proenzyme, which was unaffected. A convertase assembled with cobra venom factor and Bb was decayed by DAF, albeit far less efficiently than C3bBb. DAF did not bind cobra venom factor, implying that Bb decay is accelerated, at least in part, through DAF binding of this subunit. It is likely that DAF binds the complex with higher affinity/avidity, promoting a conformational change in either or both subunits accelerating decay. Such analysis of component and regulator interactions will inform our understanding of inhibitory mechanisms and the ways in which regulatory proteins cooperate to control the complement cascade.
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