Structural basis for low-affinity binding of non-R2 carboxylate-substituted tricyclic quinoline analogs to CK2α:
1College of Life Science and Bioengineering, Beijing University of Technology, Beijing, 100124, China.
Abstract:
Protein kinase CK2 is a novel potential target for cancer treatment. The tricyclic quinoline compound CX-4945 (R2 = COOH) is the first bioavailable CK2 inhibitor used in human clinical trials for advanced solid tumors. CX-4945 analogs with non-R2 carboxylate function were demonstrated to be approximately 5000-fold less potent than compound 12 (R2 = COOH) in vitro. Molecular docking and molecular dynamics simulations were employed to elucidate the structural mechanisms through which the R2 non-ionizable and R3 carboxylic acid substituents influence binding affinity. Results show that the structure of CK2α and the orientation of ligands changed to different degrees in non-R2 carboxylate function systems. The inappropriate electrostatic interactions between the non-R2 carboxylate group and the positive region lead to improper protein-ligand recognition, which is followed by the reorientation of tricyclic skeletons. For CK2α, the affected positions are distributed over the glycine-rich loop (G-loop), C-loop, and the β4/β5 loop. The allosteric mechanisms between the deviated ligands and the changed regions are proposed. Detailed energy calculation and residue-based energy decomposition indicate the energetic influences on the contributions of the critical residues. These results are in accordance with one another and could provide rational clues to the design of more potent CK2 inhibitors.
Insights
Protein kinase CK2 inhibitors are crucial for cancer treatment. Modifying the R2 carboxylate group significantly reduces CX-4945 potency, impacting protein-ligand interactions and guiding future drug design.
Area of Science:
- Biochemistry and Molecular Biology
- Medicinal Chemistry
- Structural Biology
Background:
- Protein kinase CK2 is a promising target for cancer therapy.
- CX-4945 is a first-in-class CK2 inhibitor in clinical trials for solid tumors.
- Analogs lacking the R2 carboxylate group exhibit drastically reduced potency.
Purpose of the Study:
- To elucidate the structural basis for the reduced potency of CX-4945 analogs lacking the R2 carboxylate.
- To understand how R2 and R3 substituents influence CK2 inhibitor binding affinity.
- To identify allosteric mechanisms affected by these structural modifications.
Main Methods:
- Molecular docking simulations
- Molecular dynamics simulations
- In vitro biochemical assays (implied by potency data)
- Energy calculations and residue-based energy decomposition
Main Results:
- Non-R2 carboxylate analogs showed significantly lower binding affinity compared to CX-4945.
- Structural changes in CK2α and ligand orientation were observed in analogs.
- Inappropriate electrostatic interactions and altered protein-ligand recognition were identified.
- Allosteric modulation involving the G-loop, C-loop, and β4/β5 loop was proposed.
Conclusions:
- The R2 carboxylate group is critical for high-affinity binding of CX-4945 to CK2α.
- Structural and electrostatic factors govern the potency of these CK2 inhibitors.
- Findings provide a rational basis for designing next-generation, more potent CK2 inhibitors for cancer treatment.
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