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Updated: Dec 24, 2025

X-Ray Crystallography to Study the Oligomeric State Transition of the Thermotoga maritima M42 Aminopeptidase TmPep1050
Published on: May 13, 2020
A local α-helix drives structural evolution of streptococcal M-protein affinity for host human plasminogen
Cunjia Qiu1,2, Yue Yuan1, Shaun W Lee3
1W. M. Keck Center for Transgene Research, University of Notre Dame, Notre Dame, IN 46556, U.S.A.
Abstract:
Plasminogen-binding group A streptococcal M-protein (PAM) is a signature surface virulence factor of specific strains of Group A Streptococcus pyogenes (GAS) and is an important tight binding protein for human plasminogen (hPg). After activation of PAM-bound hPg to the protease, plasmin (hPm), GAS cells develop invasive surfaces that are critical for their pathogenicity. PAMs are helical dimers in solution, which are sensitive to temperature changes over a physiological temperature range. We previously categorized PAMs into three classes (I-III) based on the number and nature of short tandem α-helical repeats (a1 and a2) in their NH2-terminal A-domains that dictate interactions with hPg/hPm. Class II PAMs are special cases since they only contain the a2-repeat, while Class I and Class III PAMs encompass complete a1a2-repeats. All dimeric PAMs tightly associate with hPg, regardless of their categories, but monomeric Class II PAMs bind to hPg much weaker than their Class I and Class III monomeric counterparts. Additionally, since the A-domains of Class II PAMs comprise different residues from other PAMs, the issue emerges as to whether Class II PAMs utilize different amino acid side chains for interactions with hPg. Herein, through NMR-refined structural analyses, we elucidate the atomic-level hPg-binding mechanisms adopted by two representative Class II PAMs. Furthermore, we develop an evolutionary model that explains from unique structural perspectives why PAMs develop variable A-domains with regard to hPg-binding affinity.
Insights
Group A Streptococcus pyogenes M-protein (PAM) binds human plasminogen (hPg), aiding GAS pathogenicity. This study reveals Class II PAMs
Area of Science:
- Microbiology
- Structural Biology
- Biochemistry
Background:
- Group A Streptococcus (GAS) utilizes plasminogen-binding M-protein (PAM) as a key virulence factor.
- PAM facilitates GAS invasion by binding and activating human plasminogen (hPg) to plasmin (hPm).
- PAM structure, particularly A-domain repeats, influences hPg binding affinity and GAS pathogenicity.
Purpose of the Study:
- To elucidate the atomic-level mechanisms of hPg binding by Class II PAMs.
- To investigate the structural basis for differential hPg binding affinities among PAM classes.
- To develop an evolutionary model explaining PAM A-domain variability and hPg interaction.
Main Methods:
- NMR-refined structural analyses of Class II PAMs.
- Comparative analysis of PAM structures and hPg binding affinities.
- Evolutionary modeling of PAM domain variations.
Main Results:
- Detailed atomic-level structures of hPg-bound Class II PAMs were elucidated.
- Class II PAMs exhibit distinct amino acid residues and binding mechanisms compared to other PAM classes.
- An evolutionary model explains the structural basis for variable hPg-binding affinities in PAMs.
Conclusions:
- Class II PAMs employ unique structural strategies for hPg interaction, differing from Class I and III.
- Understanding these mechanisms provides insights into GAS virulence and potential therapeutic targets.
- Evolutionary pressures have shaped PAM A-domains to modulate hPg binding affinity, impacting pathogenicity.
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