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Updated: Mar 9, 2026

Production, Crystallization, and Structure Determination of the IKK-binding Domain of NEMO
Published on: December 28, 2019
Binding Site Configurations Probe the Structure and Dynamics of the Zinc Finger of NEMO (NF-κB Essential Modulator)
Ryan C Godwin1, Ryan L Melvin1, William H Gmeiner2
1Department of Physics, Wake Forest University , Winston-Salem, North Carolina 27106, United States.
Abstract:
Zinc-finger proteins are regulators of critical signaling pathways for various cellular functions, including apoptosis and oncogenesis. Here, we investigate how binding site protonation states and zinc coordination influence protein structure, dynamics, and ultimately function, as these pivotal regulatory proteins are increasingly important for protein engineering and therapeutic discovery. To better understand the thermodynamics and dynamics of the zinc finger of NEMO (NF-κB essential modulator), as well as the role of zinc, we present results of 20 μs molecular dynamics trajectories, 5 μs for each of four active site configurations. Consistent with experimental evidence, the zinc ion is essential for mechanical stabilization of the functional, folded conformation. Hydrogen bond motifs are unique for deprotonated configurations yet overlap in protonated cases. Correlated motions and principal component analysis corroborate the similarity of the protonated configurations and highlight unique relationships of the zinc-bound configuration. We hypothesize a potential mechanism for zinc binding from results of the thiol configurations. The deprotonated, zinc-bound configuration alone predominantly maintains its tertiary structure throughout all 5 μs and alludes rare conformations potentially important for (im)proper zinc-finger-related protein-protein or protein-DNA interactions.
Insights
Zinc ions stabilize the functional structure of zinc-finger proteins, crucial for cell signaling and disease. Understanding their dynamics aids protein engineering and drug discovery.
Area of Science:
- Biochemistry
- Structural Biology
- Computational Biology
Background:
- Zinc-finger proteins regulate vital cellular processes like apoptosis and oncogenesis.
- These proteins are key targets for protein engineering and therapeutic development.
Purpose of the Study:
- To investigate how zinc coordination and binding site protonation affect the structure, dynamics, and function of zinc-finger proteins.
- To elucidate the thermodynamics and dynamics of the NEMO zinc finger and the role of zinc.
Main Methods:
- Utilizing 20 μs total molecular dynamics (MD) simulations, with 5 μs for each of four distinct active site configurations.
- Analyzing hydrogen bond motifs, correlated motions, and principal component analysis (PCA) to understand protein behavior.
Main Results:
- The zinc ion is critical for stabilizing the folded, functional conformation of the zinc finger.
- Distinct hydrogen bond patterns were observed for deprotonated versus protonated configurations.
- The zinc-bound configuration exhibited unique correlated motions and maintained tertiary structure, suggesting roles in protein interactions.
Conclusions:
- The study provides insights into the mechanism of zinc binding to zinc fingers.
- The deprotonated, zinc-bound state appears crucial for maintaining structural integrity and may mediate specific protein-protein or protein-DNA interactions.
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