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Structure-Activity Relationship and Mechanistic Studies of Bisaryl Urea Anticancer Agents Indicate Mitochondrial
Edward York1, Daniel A McNaughton2, Ariane Roseblade1
1School of Mathematical and Physical Sciences, Faculty of Science, University of Technology Sydney, Sydney, NSW 2007, Australia.
Abstract:
Targeting the cancer cell mitochondrion is a promising approach for developing novel anticancer agents. The experimental anticancer agent N,N'-bis(3,5-dichlorophenyl)urea (SR4) induces apoptotic cell death in several cancer cell lines by uncoupling mitochondrial oxidative phosphorylation (OxPhos) using a protein-free mechanism. However, the precise mechanism by which SR4 depolarizes mitochondria is unclear because SR4 lacks an acidic functional group typically found in protein-independent uncouplers. Recently, it was shown that structurally related thioureas can facilitate proton transport across lipid bilayers by a fatty acid-activated mechanism, in which the fatty acid acts as the site of protonation/deprotonation and the thiourea acts as an anion transporter that shuttles deprotonated fatty acids across the phospholipid bilayer to enable proton leak. In this paper, we show that SR4-mediated proton transport is enhanced by the presence of free fatty acids in the lipid bilayer, indicating that SR4 uncouples mitochondria through the fatty acid-activated mechanism. This mechanistic insight was used to develop a library of substituted bisaryl ureas for structure-activity relationship studies and subsequent cell testing. It was found that lipophilic electron-withdrawing groups on bisaryl ureas enhanced electrogenic proton transport via the fatty acid-activated mechanism and had the capacity to depolarize mitochondria and reduce the viability of MDA-MB-231 breast cancer cells. The most active compound in the series reduced cell viability with greater potency than SR4 and was more effective at inhibiting adenosine triphosphate production.
Insights
The anticancer agent SR4 targets cancer cell mitochondria by uncoupling oxidative phosphorylation via a fatty acid-activated mechanism. New bisaryl ureas enhance this proton transport, improving anticancer activity and ATP production inhibition.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Mitochondrial targeting is a key anticancer strategy.
- SR4 uncouples mitochondrial oxidative phosphorylation (OxPhos) via a protein-free mechanism.
- The precise mechanism of SR4-induced mitochondrial depolarization was previously unclear.
Purpose of the Study:
- To elucidate the mechanism of SR4-induced mitochondrial depolarization.
- To develop novel bisaryl ureas targeting cancer cell mitochondria.
- To investigate structure-activity relationships for enhanced anticancer effects.
Main Methods:
- Investigated SR4 proton transport in lipid bilayers with and without free fatty acids.
- Developed and synthesized a library of substituted bisaryl ureas.
- Assessed mitochondrial depolarization, cell viability, and adenosine triphosphate (ATP) production in MDA-MB-231 breast cancer cells.
Main Results:
- SR4-mediated proton transport is enhanced by free fatty acids, indicating a fatty acid-activated mechanism.
- Lipophilic electron-withdrawing groups on bisaryl ureas improved proton transport and mitochondrial depolarization.
- The most potent bisaryl urea derivative reduced breast cancer cell viability more effectively than SR4 and inhibited ATP production.
Conclusions:
- SR4 functions as a fatty acid-activated mitochondrial uncoupler.
- Substituted bisaryl ureas represent a promising class of novel anticancer agents targeting mitochondrial function.
- Optimized bisaryl ureas demonstrate enhanced potency in reducing cancer cell viability and inhibiting energy production.
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