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.

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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