Structural comparison of human C4A3 and C4B1 after proteolytic activation by C1s
1Department of Biological Sciences, Texas Tech University, Lubbock, TX 79409-3131, USA. brian.reilly@ttu.edu
Insights
Complement component 4 (C4) deficiency, particularly C4A null alleles, is linked to systemic lupus erythematosus (SLE). Structural differences in activated C4A and C4B may explain this association.
Area of Science:
- Immunology
- Biochemistry
- Genetics
Background:
- The fourth component of complement (C4) is crucial for host defense and immune regulation via classical and lectin pathways.
- Complete C4 deficiency is strongly associated with autoimmune diseases like systemic lupus erythematosus (SLE).
- C4A null alleles are implicated as significant susceptibility genes in over half of SLE patients, but the underlying mechanisms remain unclear.
Purpose of the Study:
- To investigate the structural differences between C4A and C4B proteins.
- To explore the functional implications of these structural variations in relation to SLE susceptibility.
Main Methods:
- Comparative analysis of C4A and C4B tertiary structures using near and far-UV circular dichroism.
- Assessment of protein conformation via ANS fluorescence, site-specific monoclonal antibodies, and isoelectric focusing.
Main Results:
- Native C4A and C4B proteins showed negligible structural differences.
- Activated C4A and C4B exhibited dissimilar secondary and tertiary structures.
- Significant differences in charge distribution and surface hydrophobicity were observed between activated C4A and C4B.
Conclusions:
- Conformational dissimilarities between activated C4A and C4B, along with known acceptor preferences, provide functional insights.
- These structural differences may explain the association between C4A null alleles and the development of SLE.
Abstract:
The fourth component of human complement is an essential part of the classical and lectin pathways performing multifunctional roles in both host defense and immune regulation. C4 is the most polymorphic member of the complement proteins, and complete deficiency is strongly associated with autoimmune disease, especially, systemic lupus erythematosus (SLE). Of the two C4 genes C4A, but not C4B, null alleles have been implicated as important independent disease susceptibility genes occurring in more than half of SLE patients. Whether and how this deficiency contributes to the development or pathology remains unclear. We do know that activation of C4 by C1s cleaves the thioester bond, thus inducing a conformational change that exposes numerous ligand-binding sites involved in functional activity. Structural comparison, among many other tools, plays an important role in predicting function. In this report, the tertiary structures of C4A and C4B were compared using near and far-UV circular dichroism, ANS fluorescence, site-specific monoclonal antibodies and isoelectric focusing. Negligible differences in the native proteins were found. However, the activated proteins were dissimilar in secondary and tertiary structure that was accompanied by significant differences in charge distribution and surface hydrophobicity. These conformational differences, together with known acceptor preferences, have functional implications for the association between C4A null alleles and SLE.
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