Solution structure of the complex of VEK-30 and plasminogen kringle 2

Min Wang1, Jaroslav Zajicek, James H Geiger

  • 1W.M. Keck Center for Transgene Research, 230 Raclin-Carmichael Hall, University of Notre Dame, Notre Dame, IN 46556, USA.

Insights

The solution structure of human plasminogen kringle 2 domain (K2(Pg)) complexed with VEK-30 peptide was determined using NMR. This reveals VEK-30 forms an alpha-helix that binds to K2(Pg)

Area of Science:

  • Biochemistry
  • Structural Biology
  • Molecular Interactions

Background:

  • Human plasminogen kringle 2 domain (K2(Pg)) is crucial in fibrinolysis.
  • Streptococcal M-like plasminogen binding proteins (PAMs) interact with plasminogen.
  • Understanding these interactions is key to developing therapeutic strategies.

Purpose of the Study:

  • To determine the solution structure of the K2(Pg)-VEK-30 complex.
  • To elucidate the molecular basis of VEK-30 binding to K2(Pg).
  • To identify key residues and interactions involved in high-affinity binding.

Main Methods:

  • Multinuclear high-resolution Nuclear Magnetic Resonance (NMR) spectroscopy.
  • Triple-resonance experiments for assignments.
  • Structure calculations and restrained molecular simulations in water.

Main Results:

  • The K2(Pg)-VEK-30 complex exists as a monomer in solution.
  • VEK-30 forms an alpha-helix (residues 6-27) that binds to the K2(Pg) lysine binding site (LBS).
  • Specific electrostatic interactions between VEK-30's N-terminus and K2(Pg) residues (Lys43, Arg55) enhance binding affinity.

Conclusions:

  • The study provides the first NMR-derived structure of the K2(Pg)-VEK-30 complex.
  • Detailed insights into the structural basis for VEK-30's high specificity and affinity for K2(Pg).
  • Findings contribute to understanding plasminogen-PAM interactions and potential therapeutic targets.

Related Concept Videos

Cytoskeletal Linker Proteins - Plakins01:09

Cytoskeletal Linker Proteins - Plakins

Plakins are large proteins with binding domains for microtubules, microfilaments, intermediate filaments, and membrane-associated protein complexes at cell junctions. Plakin functions are evolutionarily conserved and are primarily involved in organizing the different components of the cytoskeleton by crosslinking them to each other and connecting them to the cell-matrix and cell adhesion complexes. They are also known to interact with signal transducers, serve as scaffolds for signaling...
Formation of the Platelet Plug01:22

Formation of the Platelet Plug

The platelet phase, the second stage of hemostasis, commences around 15-20 seconds after an injury. It follows and overlaps with the vascular phase, during which blood vessels constrict to minimize blood loss.
As the injured blood vessel contracts, endothelial cells undergo contraction, revealing collagen fibers in the basement membrane and underlying connective tissue. Furthermore, the plasma membrane of endothelial cells becomes adhesive, preparing the site for platelet adhesion. Platelets...
Clot Retraction and Fibrinolysis01:16

Clot Retraction and Fibrinolysis

After a fibrin clot is formed, the next step is clot retraction, a vital process facilitated by platelet contractile proteins, such as actin and myosin. These proteins pull the fibrin strands closer together and condense the clot. This action reduces the size of the clot, creating a smaller, denser structure that effectively seals off the damaged vessel. Clot retraction consolidates the clot and helps with wound healing by bringing the edges of the damaged blood vessel closer together.
Valence Bond Theory02:42

Valence Bond Theory

Coordination compounds and complexes exhibit different colors, geometries, and magnetic behavior, depending on the metal atom/ion and ligands from which they are composed. In an attempt to explain the bonding and structure of coordination complexes, Linus Pauling proposed the valence bond theory, or VBT, using the concepts of hybridization and the overlapping of the atomic orbitals. According to VBT, the central metal atom or ion (Lewis acid) hybridizes to provide empty orbitals of suitable...
Protein Complex Assembly02:41

Protein Complex Assembly

Proteins can form homomeric complexes with another unit of the same protein or heteromeric complexes with different types.  Most protein complexes self-assemble spontaneously via ordered pathways, while some proteins need assembly factors that guide their proper assembly. Despite the crowded intracellular environment, proteins usually interact with their correct partners and form functional complexes.
Many viruses self-assemble into a fully functional unit using the infected host cell to...
Protein Complexes with Interchangeable Parts01:57

Protein Complexes with Interchangeable Parts

Groups of proteins may form a complex where each protein in this complex has a different role in the overall execution of the complex’s function. Often some of the proteins in the complex can be replaced by a closely related variant to give a complex that contains many of the same components yet is functionally distinct.
The SCF ubiquitin ligase is a protein complex of five individual proteins. This complex attaches ubiquitin to other target proteins to mark them for degradation. In order to...