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Identification of Selective ATP-Competitive CMG Helicase Inhibitors for Cancer Intervention that Disrupt
Shengyan Xiang1,2, Xingju Luo1,2, Darcy Welch1,3
1Cancer Biology and Evolution Program, Moffitt Cancer Center and Research Institute, Tampa, FL 33612.
Abstract:
The human CMG helicase (Cdc45-MCM-GINS) is a novel target for anti-cancer therapy due to tumor-specific weaknesses in CMG function induced by oncogenic changes and the need for CMG function during recovery from replicative stresses such as chemotherapy. Here, we developed an orthogonal biochemical screening approach and identified selective CMG inhibitors (CMGi) that inhibit ATPase and helicase activities in an ATP-competitive manner at low micromolar concentrations. Structure-activity information and in silico docking indicate that CMGi occupy ATP binding sites and channels within MCM subunits leading to the ATP clefts, which are likely used for ATP/ADP ingress or egress. CMGi inhibit cell growth and DNA replication using multiple molecular mechanisms. CMGi block helicase assembly steps that require ATP binding/hydrolysis by the MCM complex, specifically MCM ring assembly on DNA and GINS recruitment to DNA-loaded MCM hexamers. During S-phase, inhibition of MCM ATP binding/hydrolysis by CMGi causes a 'reverse allosteric' dissociation of Cdc45/GINS from the CMG that destabilizes the replisome and disrupts interactions with Ctf4, Mcm10, and DNA polymerase-α, -δ, -ε, resulting in DNA damage. These novel CMGi are selectively toxic toward tumor cells and define a new class of CMG helicase-targeted anti-cancer compounds with distinct mechanisms of action.
Insights
Researchers identified novel CMG helicase inhibitors (CMGi) that selectively target cancer cells. These compounds disrupt DNA replication and cell growth by inhibiting CMG ATPase and helicase activities, offering a new anti-cancer therapeutic strategy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Therapeutics
Background:
- The CMG helicase (Cdc45-MCM-GINS) is crucial for DNA replication and presents a potential anti-cancer target due to tumor-specific vulnerabilities.
- Oncogenic alterations and replicative stress (e.g., chemotherapy) highlight CMG's essential role in cancer cell survival and recovery.
Approach:
- Developed an orthogonal biochemical screening method to identify selective CMG inhibitors (CMGi).
- Utilized structure-activity relationship analysis and in silico docking to understand CMGi binding within MCM subunits.
- Investigated the molecular mechanisms by which CMGi inhibit CMG helicase activity and impact DNA replication.
Key Points:
- Identified CMGi that inhibit CMG helicase ATPase and helicase activities via ATP-competitive binding at low micromolar concentrations.
- CMGi bind to MCM ATP sites and channels, likely interfering with ATP/ADP exchange.
- CMGi disrupt CMG assembly, including MCM ring formation and GINS recruitment, and destabilize the replisome by causing Cdc45/GINS dissociation.
Conclusions:
- CMGi induce DNA damage by disrupting replisome integrity and interactions with key replication factors.
- These novel CMGi exhibit selective toxicity towards tumor cells.
- Defined a new class of CMG helicase-targeted anti-cancer compounds with unique mechanisms of action.
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