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Published on: February 9, 2024
Ophiobolin A Covalently Targets Mitochondrial Complex IV Leading to Metabolic Collapse in Cancer Cells
Flor A Gowans1,2,3,4,5, Danny Q Thach2,3, Zhouyang Zhu2,3
1Department of Nutritional Sciences and Toxicology, University of California, Berkeley, Berkeley, California 94720, United States.
Ophiobolin A (OPA), an anticancer compound, targets mitochondrial complex IV proteins COX5A and HIGD2A. This disrupts cellular energy production, leading to cancer cell death via compromised mitochondrial energetics.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Ophiobolin A (OPA) is a fungal sesterterpenoid with known anticancer properties.
- Its precise proteome-wide targets and anticancer mechanisms remain incompletely understood.
- OPA's electrophilic nature suggests covalent interactions with proteins.
Purpose of the Study:
- To elucidate the proteome-wide targets and anticancer mechanism of Ophiobolin A (OPA).
- To investigate the role of specific protein targets in OPA's antiproliferative activity.
- To understand the impact of OPA on mitochondrial function and cellular energetics.
Main Methods:
- Utilized covalent chemoproteomic platforms to map OPA's protein reactivity in lung cancer cells.
- Identified and focused on two key protein targets: COX5A (lysine-72) and HIGD2A (cysteine-53).
- Assessed the functional consequences of OPA engagement with these targets on mitochondrial respiration and ATP levels.
Main Results:
- OPA covalently binds to specific sites on cytochrome c oxidase subunit 5A (COX5A) and mitochondrial hypoxia induced gene 1 domain family member 2A (HIGD2A).
- These proteins are components of mitochondrial complex IV, crucial for electron transport.
- OPA's interaction activates mitochondrial respiration, causing an initial ATP surge and oxidative stress, followed by ATP depletion and cell death.
Conclusions:
- OPA exhibits a unique anticancer mechanism by targeting and activating mitochondrial complex IV (cytochrome C oxidase).
- This activation leads to dysregulated mitochondrial energetics, including initial hyper-respiration and subsequent ATP depletion.
- The study reveals a novel pathway for OPA-induced cancer cell death mediated by compromised mitochondrial function.
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