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March 30, 2026The Journal of Physical Chemistry B0 citations

Probing Solution Dynamics of Tissue Factor Using Molecular Dynamics Simulations Guided by NMR Chemical Shifts

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MLMuyun LihanSPShashank PantAOAdedolapo Ojoawo

Key Points

  • This research aims to characterize the dynamics of soluble tissue factor using combined NMR and molecular dynamics approaches.
  • Utilized X-ray crystal structures as a starting point for simulations.
  • Incorporated NMR chemical shifts as restraints in molecular dynamics simulations.
  • Identified key residues involved in the binding loop of tissue factor's interaction with coagulation factor VIIa.
  • Revealed a dynamic ensemble of configurations in the tissue factor loop crucial for binding to factor VIIa.
  • Showed that incorporating NMR data provides a more accurate description of soluble tissue factor dynamics in solution.

Abstract

Structure and dynamics of proteins are key to understanding their roles in biological systems and provide a framework for rational development of novel therapeutics. Here, we combine NMR chemical shifts (CSs), X-ray crystal structures, and molecular dynamics (MD) simulations to characterize the extracellular domain of human tissue factor, i.e., soluble tissue factor (sTF), a protein that is involved in the initiation of the blood clotting process by forming a complex with the coagulation factor VIIa (fVIIa). Starting with the X-ray structures, solution NMR CSs were incorporated as restraints in CS-guided MD simulations to obtain structures in agreement with the NMR solution data of the protein. Our results reveal a dynamic ensemble of configurations in a loop that is key to sTF interaction with fVIIa. Key residues have been identified in the fVIIa-binding loop with divergent backbone and/or side-chain configurations to account for the loop dynamics. We demonstrate that the resulting structural ensemble from the incorporation of solution NMR CSs provides a better description of sTF dynamics in solution. The integrated approach used in this study can be applied to provide a better molecular guide for therapeutics that specifically target sTF.

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Cite This Study

Lihan et al. (2026) studied this question.

synapsesocial.com/papers/69ca134b883daed6ee095390https://doi.org/10.1021/acs.jpcb.6c00315
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