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Updated: Jan 27, 2026

Protein Purification-free Method of Binding Affinity Determination by Microscale Thermophoresis
Published on: August 15, 2013
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.
Abstract:
M-proteins (M-Prts) are major virulence determinants of Group A Streptococcus pyogenes (GAS) that are covalently anchored to the cell wall at their conserved COOH-termini while the NH2-terminal regions extend through the capsule into extracellular space. Functional M-Prts are also secreted and/or released from GAS cells where they exist as helical coiled-coil dimers in solution. Certain GAS strains (Pattern D) uniquely express an M-protein (plasminogen-binding group A streptococcal M-protein; PAM) that directly interacts with human plasminogen (hPg), a process strongly implicated in the virulence of these strains. M-Prt expressed by the emm gene is employed to serotype over 250 known strains of GAS, ∼20 of which are hitherto found to express PAMs. We have developed a modular structural model of the PAM dimer that describes the roles of different domains of this protein in various functions. While the helical COOH-terminal domains of PAM are essential for dimerization in solution, regions of its NH2-terminal domains also exhibit a weak potential to dimerize. We find that temperature controls the open (unwound) or closed (wound) states of the functional NH2-terminal domains of PAM. As temperature increases, α-helices are dramatically reduced, which concomitantly destabilizes the helical coiled-coil PAM dimers. PAMs with two a-repeats within the variable NH2-terminal A-domain (class I/III) bind to hPg tightly, but natural PAM isolates with a single a-repeat in this domain (class II) display dramatic changes in hPg binding with temperature. We conclude that coexistence of two a-repeats in PAM is critical to achieve optimal binding to hPg, especially in its monomeric form, at the biologically relevant temperature.
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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