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Mechanisms of S-phase arrest and mitochondrial dysfunction in complex III by DHODH inhibitors in tumorigenic TNBC
Muhammad Aiman Akmal Shahhiran1,2, Mohamad Fairus Abdul Kadir3, Nurshamimi Nor Rashid1,2
1Department of Molecular Medicine, Faculty of Medicine, University of Malaya, 50603, Kuala Lumpur, Malaysia.
Abstract:
Dihydroorotate dehydrogenase (DHODH) inhibitors have recently gained increasing research interest owing to their potential for treating breast cancers. We explored their effects in different breast cancer subtypes, focusing on mitochondrial dysfunction. The sensitivity of different subtypes to the inhibitors was investigated with respect to DHODH expression, tumorigenic, and receptor status. Analysis of respiratory complexes, cell cycle, reactive oxygen species (ROS), and cell differentiation were performed. Four cell lines with different receptor status were included, namely MCF-7, MDAMB-231, SKBR-3, and MCF-10A. We showed that MCF-7 and MDAMB-231 cells of the subtypes (ER+/PR+/HER2-) and (ER-/PR-/HER2-), respectively, were responsive to brequinar. Brequinar (BQR) caused cell cycle arrest in the S-phase in sensitive subtypes of breast cells but induced cell differentiation only in poorly differentiated breast cells. All cell subtypes showed increased generation of ROS, both intracellular and mitochondrial ROS with a greater increase seen in mitochondrial ROS in response to DHODH inhibitor, subsequently contributing to mitochondrial dysfunction. BQR also disrupts the function of complex III in ER+/PR+ and triple negative breast cancer (TNBC) subtypes. Collectively, we have found that MDAMB-231 TNBC cell was the most affected by DHODH inhibition in terms of sensitivity, cell cycle arrest, induction of cell differentiation, production of ROS, and mitochondrial complexes disruption. In conclusion, these findings suggest that DHODH inhibitors can potentially become a valuable targeted therapy for TNBC subtype and further consolidates its therapeutic potential as part of the combinatorial therapy against this resilient breast cancer subtype.
Insights
Dihydroorotate dehydrogenase (DHODH) inhibitors show promise for treating breast cancer, particularly triple-negative breast cancer (TNBC). These inhibitors induce cell cycle arrest, ROS production, and mitochondrial dysfunction, with TNBC cells being most sensitive.
Area of Science:
- Oncology
- Molecular Biology
- Biochemistry
Background:
- Dihydroorotate dehydrogenase (DHODH) inhibitors are emerging as potential breast cancer therapeutics.
- Their impact on mitochondrial dysfunction across breast cancer subtypes requires further investigation.
Purpose of the Study:
- To explore the effects of DHODH inhibitors on different breast cancer subtypes, focusing on mitochondrial dysfunction.
- To assess the sensitivity of various subtypes based on DHODH expression, tumorigenic, and receptor status.
Main Methods:
- Investigated DHODH inhibitor sensitivity in four cell lines (MCF-7, MDAMB-231, SKBR-3, MCF-10A) representing different receptor statuses.
- Analyzed respiratory complexes, cell cycle, reactive oxygen species (ROS) generation, and cell differentiation.
- Utilized brequinar (BQR) as the DHODH inhibitor.
Main Results:
- Brequinar (BQR) showed sensitivity in ER+/PR+/HER2- (MCF-7) and ER-/PR-/HER2- (MDAMB-231) subtypes.
- BQR induced S-phase cell cycle arrest and differentiation in poorly differentiated cells, with increased ROS production (especially mitochondrial).
- Complex III function was disrupted in ER+/PR+ and triple-negative breast cancer (TNBC) subtypes, with MDAMB-231 TNBC cells exhibiting the highest sensitivity.
Conclusions:
- DHODH inhibition effectively targets TNBC cells, inducing sensitivity, cell cycle arrest, differentiation, ROS production, and mitochondrial disruption.
- DHODH inhibitors represent a potential targeted therapy for TNBC and may be valuable in combinatorial treatments for this challenging breast cancer subtype.
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