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Kringle 2 mediates high affinity binding of plasminogen to an internal sequence in streptococcal surface protein PAM

A C Wistedt1, H Kotarsky, D Marti

  • 1Department of Laboratory Medicine, University of Lund, S-22362 Lund, Sweden.

Insights

Group A Streptococcus PAM protein binds plasminogen (Pg) via its K2 domain. This study identifies the K2 kringle domain as the primary binding site for PAM, clarifying a key host-pathogen interaction.

Area of Science:

  • Microbiology
  • Biochemistry
  • Molecular Biology

Background:

  • Many cells bind plasminogen (Pg), but the specific molecules involved are often unknown.
  • The group A streptococcal surface protein PAM has a domain with repeated sequences (a1 and a2) that bind Pg.

Purpose of the Study:

  • To identify the specific region of plasminogen (Pg) that interacts with the PAM protein.
  • To characterize the molecular interaction between PAM and Pg.

Main Methods:

  • Used radiolabeled Pg fragments to test binding to PAM-expressing bacteria.
  • Synthesized and used recombinant polypeptides of the PAM a1a2 sequence and K1-K3, K4, K5 Pg fragments.
  • Employed surface plasmon resonance to quantify binding affinity.
  • Conducted inhibition experiments to identify binding site involvement.

Main Results:

  • A Pg fragment containing kringles 1-3 (K1-K3) bound to PAM-expressing bacteria, while fragments with K4, K5, or the serine protease domain did not.
  • The PAM a1a2 sequence specifically bound to the K2 kringle domain of Pg.
  • Surface plasmon resonance showed a high affinity interaction (4.5 x 10^7 M-1) between the a1a2 sequence and K2.
  • Inhibition studies indicated that the lysine-binding site of K2 is involved in the interaction.

Conclusions:

  • The K2 kringle domain is the primary binding site for the group A streptococcal PAM protein.
  • This study provides the first well-defined example of a protein interacting with a single kringle domain of Pg.
  • Understanding this interaction is crucial for host-pathogen dynamics involving group A Streptococcus.

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