Variations in the secondary structures of PAM proteins influence their binding affinities to human plasminogen

Cunjia Qiu1, Yue Yuan2, Zhong Liang2

  • 1W.M. Keck Center for Transgene Research, University of Notre Dame, Notre Dame, IN 46556, United States; Department of Chemistry and Biochemistry, University of Notre Dame, Notre Dame, IN 46556, United States.

Insights

Group A Streptococcus M-proteins (M-Prts) are key virulence factors. Plasminogen-binding M-proteins (PAMs) bind human plasminogen, with two a-repeats critical for optimal binding at body temperature.

Area of Science:

  • Microbiology
  • Structural Biology
  • Molecular Biology

Background:

  • M-proteins (M-Prts) are major virulence factors of Group A Streptococcus (GAS).
  • Certain GAS strains express plasminogen-binding M-proteins (PAMs) that interact with human plasminogen (hPg), enhancing virulence.
  • M-Prt genes (emm) are used for GAS serotyping, with ~20 strains expressing PAMs.

Purpose of the Study:

  • To develop a modular structural model of the PAM dimer.
  • To elucidate the functional roles of different PAM domains.
  • To understand the temperature-dependent regulation of PAM-hPg interactions.

Main Methods:

  • Development of a modular structural model for PAM dimers.
  • Analysis of PAM domain structures and dimerization potentials.
  • Investigation of temperature effects on PAM structure and hPg binding affinity.

Main Results:

  • The COOH-terminal domains are essential for PAM dimerization, while NH2-terminal domains show weaker dimerization potential.
  • Temperature regulates the conformational states (open/closed) of the NH2-terminal domains.
  • PAMs with two a-repeats bind hPg tightly, whereas those with one a-repeat show temperature-dependent binding variations.

Conclusions:

  • The presence of two a-repeats in PAM is crucial for optimal hPg binding, particularly in the monomeric form.
  • Temperature significantly influences PAM structure and its interaction with hPg.
  • Understanding PAM structure-function relationships provides insights into GAS virulence mechanisms.

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