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Structure of Ca2+-bound S100A4 and its interaction with peptides derived from nonmuscle myosin-IIA
Vladimir N Malashkevich1, Kristen M Varney, Sarah C Garrett
1Department of Biochemistry, Albert Einstein College of Medicine, 1300 Morris Park Avenue, Bronx, New York 10461, USA.
Abstract:
S100A4, also known as mts1, is a member of the S100 family of Ca2+-binding proteins that is directly involved in tumor invasion and metastasis via interactions with specific protein targets, including nonmuscle myosin-IIA (MIIA). Human S100A4 binds two Ca2+ ions with the typical EF-hand exhibiting an affinity that is nearly 1 order of magnitude tighter than that of the pseudo-EF-hand. To examine how Ca2+ modifies the overall organization and structure of the protein, we determined the 1.7 A crystal structure of the human Ca2+-S100A4. Ca2+ binding induces a large reorientation of helix 3 in the typical EF-hand. This reorganization exposes a hydrophobic cleft that is comprised of residues from the hinge region,helix 3, and helix 4, which afford specific target recognition and binding. The Ca2+-dependent conformational change is required for S100A4 to bind peptide sequences derived from the C-terminal portion of the MIIA rod with submicromolar affinity. In addition, the level of binding of Ca2+ to both EF-hands increases by 1 order of magnitude in the presence of MIIA. NMR spectroscopy studies demonstrate that following titration with a MIIA peptide, the largest chemical shift perturbations and exchange broadening effects occur for residues in the hydrophobic pocket of Ca2+-S100A4. Most of these residues are not exposed in apo-S100A4 and explain the Ca2+ dependence of formation of theS100A4-MIIA complex. These studies provide the foundation for understanding S100A4 target recognition and may support the development of reagents that interfere with S100A4 function.
Insights
Calcium binding to S100A4 (also known as mts1) protein induces structural changes, exposing a binding site for nonmuscle myosin-IIA (MIIA). This Ca2+-dependent interaction is crucial for S100A4
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Oncology
Background:
- S100A4 (mts1) is a calcium-binding protein implicated in tumor metastasis.
- S100A4 interacts with nonmuscle myosin-IIA (MIIA), a key factor in cell motility.
- Understanding the structural basis of S100A4-MIIA interaction is vital for cancer research.
Purpose of the Study:
- To elucidate the structural mechanism of calcium-mediated S100A4 function.
- To investigate how calcium binding alters S100A4 conformation and target recognition.
- To characterize the interaction between S100A4 and nonmuscle myosin-IIA (MIIA).
Main Methods:
- 1.7 Å crystal structure determination of human Ca2+-S100A4.
- Nuclear Magnetic Resonance (NMR) spectroscopy to study protein-peptide interactions.
- Biochemical assays to quantify binding affinities.
Main Results:
- Calcium binding induces a significant reorientation of helix 3 in S100A4's EF-hand.
- A hydrophobic cleft, essential for target binding, is exposed upon Ca2+ incorporation.
- Ca2+-S100A4 binds MIIA peptide sequences with submicromolar affinity, a process dependent on Ca2+.
- Ca2+ binding affinity to S100A4 increases significantly in the presence of MIIA.
Conclusions:
- Calcium binding is critical for S100A4's ability to recognize and bind its target MIIA.
- The Ca2+-induced conformational change in S100A4 is essential for its role in metastasis.
- These findings provide a structural basis for developing inhibitors of S100A4 function in cancer.
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