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Mapping a conserved conformational epitope from the M protein of group A streptococci
W A Relf1, J Cooper, E R Brandt
1Queensland Institute of Medical Research, Royal Brisbane Hospital, Australia.
Abstract:
The carboxyl terminus of the M protein of group A streptococci (GAS) is highly conserved and contains epitopes that have been shown to induce opsonic antibodies and protection against GAS infection. This region of the protein can also stimulate T cells, which can react in vitro with heart antigens. Since different segments of the carboxyl terminus may be involved in immunity to GAS and in the pathogenesis of autoimmune disease (rheumatic heart disease), it is important to precisely define critical epitopes. However, the M protein is known to be a coiled coil, and a critical immunodominant antibody-binding epitope within this region (peptide 145, a 20-mer with the sequence LRRDLDASREAKK-QVEKALE) is shown here to be conformational. Thus, small synthetic overlapping peptides of 8-12 amino acids in length that span peptide 145 (p145) were unable to capture antibodies present in p145-immune mouse sera or in endemic human sera, even though antibodies raised to these small peptides coupled to diphtheria toxoid could bind the smaller peptides and, in some cases, p145. A series of mutated peptides in which every residue of p145 was sequentially altered also failed to identify critical residues for antibody binding. We thus devised a strategy to produce chimeric peptides in which small peptides copying the M protein sequence were displayed within a larger 28-mer peptide derived from the sequence of the GCN4 leucine zipper DNA binding protein of yeast. A 12-amino-acid window of the p145 sequence was inserted into the GCN4 peptide in such a way as to preserve any potential helical structure. The window was moved along one residue at a time to give a series of peptides representing p145. Circular dichroism demonstrated that these larger chimeric peptides and p145, but not a shorter 12-mer peptide, displayed alpha-helical potential in 50% trifluoroethanol. Certain chimeric peptides efficiently captured antibodies specific for p145 and thus enabled us to map the minimal antibody-binding sequence. RRDLDASREAKK, referred to as J(1)2. The chimeric peptide containing this sequence, referred to as J2, was able to inhibit opsonization of GAS by human antisera containing anti-peptide 145 antibodies. The T-cell response from p145-immunized responder B10.BR mice to J2 and J(I)2 was much lower than the response to p145 and mapped to a different peptide.
Insights
Group A Streptococcus M protein's critical antibody epitope is conformational, requiring chimeric peptides to map its minimal binding sequence. This finding aids understanding of GAS immunity and rheumatic heart disease pathogenesis.
Area of Science:
- Immunology
- Microbiology
- Structural Biology
Background:
- The M protein of Group A Streptococcus (GAS) is crucial for immune evasion and contains conserved epitopes.
- Antibodies to the M protein carboxyl terminus can provide protection against GAS infection.
- This region also elicits T-cell responses that cross-react with heart antigens, potentially contributing to rheumatic heart disease.
Purpose of the Study:
- To precisely define critical epitopes within the M protein carboxyl terminus.
- To identify the minimal antibody-binding sequence of a key epitope (peptide 145).
- To investigate the structural basis of antibody recognition and its implications for immunity and autoimmunity.
Main Methods:
- Synthesis of small overlapping peptides and mutated peptides spanning peptide 145.
- Development of chimeric peptides displaying M protein fragments within a helical scaffold (GCN4 leucine zipper).
- Circular dichroism spectroscopy to assess helical structure.
- Antibody capture assays using mouse and human sera.
- Inhibition assays for opsonization.
- T-cell proliferation assays.
Main Results:
- Small synthetic peptides failed to capture antibodies, indicating the epitope is conformational.
- Chimeric peptides, but not short linear peptides, exhibited alpha-helical potential similar to native peptide 145.
- Chimeric peptides successfully mapped the minimal antibody-binding sequence to RRDLDASREAKK (J(I)2).
- The identified minimal epitope (J2) inhibited GAS opsonization.
- T-cell responses to the mapped epitope were significantly lower than to the full peptide 145.
Conclusions:
- The immunodominant epitope of M protein peptide 145 is conformational and relies on helical structure for antibody recognition.
- Chimeric peptides are effective tools for mapping conformational epitopes within coiled-coil proteins.
- The minimal binding epitope differs from regions that elicit strong T-cell responses, suggesting distinct epitope structures for antibody and T-cell recognition.
- Findings contribute to understanding GAS immunity and the autoimmune mechanisms in rheumatic heart disease.
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