Expression and characterization of the C345C/NTR domains of complement components C3 and C5
Chuong-Thu Thai1, Ronald T Ogata
1Torrey Pines Institute for Molecular Studies, San Diego, CA 92121, USA.
Insights
The C345C module of complement protein C5, but not C3, inhibits hemolytic activity. This C5 module binds C6 and C7, suggesting pre-activation complexes facilitate membrane attack complex assembly.
Area of Science:
- Immunology
- Structural Biology
- Biochemistry
Background:
- Complement components C3, C4, and C5 belong to the alpha-macroglobulin superfamily.
- These proteins possess a unique C-terminal extension (C345C/NTR module) with three disulfide bonds.
- This module is homologous to domains in netrins and tissue inhibitors of metalloproteinases.
Purpose of the Study:
- To investigate the structure and function of the C345C module from complement proteins C3 and C5.
- To determine the independent activity and binding properties of the C345C module.
- To elucidate the role of the C5-C345C module in complement system assembly.
Main Methods:
- Expression of recombinant C3-C345C and C5-C345C in bacteria.
- Affinity purification of recombinant proteins.
- Analysis of protein structure (disulfide bonds, beta-sheet content).
- Assay of complement hemolytic activity.
- Surface plasmon resonance to determine binding kinetics.
Main Results:
- Recombinant C3-C345C and C5-C345C exhibited disulfide bonds and high beta-sheet content.
- Recombinant C5-C345C inhibited complement hemolytic activity, while C3-C345C did not.
- rC5-C345C bound C6 and C7 with high affinity (dissociation constants of 10 nM and 3 nM, respectively).
Conclusions:
- The C5-C345C module directly binds C6 and C7, likely via their factor I modules.
- These findings support the existence of pre-activation complexes of C5 with C6/C7 in plasma.
- Such complexes may play a role in facilitating the assembly of the complement membrane attack complex.
Abstract:
Complement components C3, C4, and C5 are members of the thioester-containing alpha-macroglobulin protein superfamily. Within this superfamily, a unique feature of the complement proteins is a 150-residue-long C-terminal extension of their alpha-subunits that harbors three internal disulfide bonds. Previous reports have suggested that this is an independent structural module, homologous to modules found in other proteins, including netrins and tissue inhibitors of metalloproteinases. Because of its distribution, this putative module has been named both C345C and NTR. To assess the structures of these segments of the complement proteins, their relationships with other domains, and activities as independent structures, we expressed C345C from C3 and C5 in a bacterial strain that permits cytoplasmic disulfide bond formation. Affinity purification directly from cell lysates yielded recombinant C3- and C5-C345C with properties consistent with multiple intramolecular disulfide bonds and high beta-sheet contents. rC5-, but not rC3-C345C inhibited complement hemolytic activity, and surface plasmon resonance studies revealed that rC5-C345C binds to complement components C6 and C7 with dissociation constants of 10 and 3 nM, respectively. Our results provide strong evidence that this binding corresponds to the previously described reversible binding of C5 to C6 and C7, and taken together with earlier work, indicate that the C5-C345C module interacts directly with the factor I modules in C6 and C7. The high binding affinities suggest that complexes composed of C5 bound to C6 or C7 exist in plasma before activation and may facilitate assembly of the complement membrane attack complex.
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