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Structural Approach To Identify a Lead Scaffold That Targets the Translesion Synthesis Polymerase Rev1
Radha Charan Dash1, Zuleyha Ozen1, Alessandro A Rizzo2
1Department of Pharmaceutical Sciences , University of Connecticut , 69 North Eagleville Road , Unit 3092, Storrs , Connecticut 06269 , United States.
Abstract:
Translesion synthesis (TLS) is a mechanism of replication past damaged DNA through which multiple forms of human cancer survive and acquire resistance to first-line genotoxic chemotherapies. As such, TLS is emerging as a promising target for the development of a new class of anticancer agents. The C-terminal domain of the DNA polymerase Rev1 (Rev1-CT) mediates assembly of the functional TLS complex through protein-protein interactions (PPIs) with Rev1 interacting regions (RIRs) of several other TLS DNA polymerases. Utilizing structural knowledge of the Rev1-CT/RIR interface, we have identified the phenazopyridine scaffold as an inhibitor of this essential TLS PPI. We demonstrate direct binding of this scaffold to Rev1-CT, and the synthesis and evaluation of a small series of analogues have provided important structure-activity relationships for further development of this scaffold. Furthermore, we utilized the umbrella sampling method to predict the free energy of binding to Rev1-CT for each of our analogues. Binding energies calculated through umbrella sampling correlated well with experimentally determined IC50 values, validating this computational tool as a viable approach to predict the biological activity for inhibitors of the Rev1-CT/RIR PPI.
Insights
Translesion synthesis (TLS) is crucial for cancer survival and drug resistance. Researchers identified a phenazopyridine scaffold that inhibits a key TLS protein interaction, offering a new anticancer drug target.
Area of Science:
- Biochemistry
- Molecular Biology
- Medicinal Chemistry
Background:
- Translesion synthesis (TLS) enables cancer cells to survive DNA damage and resist chemotherapy.
- TLS involves protein-protein interactions (PPIs) mediated by the Rev1 C-terminal domain (Rev1-CT) with other TLS polymerases.
Purpose of the Study:
- To identify inhibitors of the Rev1-CT/RIR PPI.
- To develop novel anticancer agents targeting TLS.
Main Methods:
- Utilized structural information of the Rev1-CT/RIR interface to identify inhibitor scaffolds.
- Synthesized and evaluated phenazopyridine analogues.
- Employed umbrella sampling simulations to predict binding free energies.
Main Results:
- Identified the phenazopyridine scaffold as a direct binder to Rev1-CT.
- Established structure-activity relationships for phenazopyridine analogues.
- Demonstrated good correlation between computational binding energies and experimental IC50 values.
Conclusions:
- The phenazopyridine scaffold is a promising starting point for developing TLS inhibitors.
- Umbrella sampling is a validated computational tool for predicting biological activity of Rev1-CT/RIR PPI inhibitors.
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