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Identification of a novel mitochondrial uncoupler that does not depolarize the plasma membrane
Brandon M Kenwood1, Janelle L Weaver1, Amandeep Bajwa2
1Department of Pharmacology, University of Virginia, Charlottesville, VA 22908, USA.
Abstract:
Dysregulation of oxidative phosphorylation is associated with increased mitochondrial reactive oxygen species production and some of the most prevalent human diseases including obesity, cancer, diabetes, neurodegeneration, and heart disease. Chemical 'mitochondrial uncouplers' are lipophilic weak acids that transport protons into the mitochondrial matrix via a pathway that is independent of ATP synthase, thereby uncoupling nutrient oxidation from ATP production. Mitochondrial uncouplers also lessen the proton motive force across the mitochondrial inner membrane and thereby increase the rate of mitochondrial respiration while decreasing production of reactive oxygen species. Thus, mitochondrial uncouplers are valuable chemical tools that enable the measurement of maximal mitochondrial respiration and they have been used therapeutically to decrease mitochondrial reactive oxygen species production. However, the most widely used protonophore uncouplers such as carbonyl cyanide p-trifluoromethoxyphenylhydrazone (FCCP) and 2,4-dinitrophenol have off-target activity at other membranes that lead to a range of undesired effects including plasma membrane depolarization, mitochondrial inhibition, and cytotoxicity. These unwanted properties interfere with the measurement of mitochondrial function and result in a narrow therapeutic index that limits their usefulness in the clinic. To identify new mitochondrial uncouplers that lack off-target activity at the plasma membrane we screened a small molecule chemical library. Herein we report the identification and validation of a novel mitochondrial protonophore uncoupler (2-fluorophenyl){6-[(2-fluorophenyl)amino](1,2,5-oxadiazolo[3,4-e]pyrazin-5-yl)}amine, named BAM15, that does not depolarize the plasma membrane. Compared to FCCP, an uncoupler of equal potency, BAM15 treatment of cultured cells stimulates a higher maximum rate of mitochondrial respiration and is less cytotoxic. Furthermore, BAM15 is bioactive in vivo and dose-dependently protects mice from acute renal ischemic-reperfusion injury. From a technical standpoint, BAM15 represents an effective new tool that allows the study of mitochondrial function in the absence of off-target effects that can confound data interpretation. From a therapeutic perspective, BAM15-mediated protection from ischemia-reperfusion injury and its reduced toxicity will hopefully reignite interest in pharmacological uncoupling for the treatment of the myriad of diseases that are associated with altered mitochondrial function.
Insights
Researchers discovered BAM15, a novel mitochondrial uncoupler that enhances respiration and reduces reactive oxygen species without plasma membrane depolarization. This safer alternative shows therapeutic potential for diseases linked to mitochondrial dysfunction.
Area of Science:
- Mitochondrial Biology and Biochemistry
- Pharmacology and Drug Discovery
- Cellular Physiology
Background:
- Dysregulated oxidative phosphorylation increases mitochondrial reactive oxygen species (ROS), contributing to major diseases like cancer, diabetes, and neurodegeneration.
- Chemical mitochondrial uncouplers, while useful for research and therapy, often exhibit off-target effects (e.g., plasma membrane depolarization, cytotoxicity) due to compounds like FCCP and DNP.
- These limitations hinder accurate mitochondrial function assessment and restrict therapeutic applications.
Purpose of the Study:
- To identify novel mitochondrial protonophore uncouplers lacking off-target activity at the plasma membrane.
- To characterize the efficacy and safety profile of a newly identified uncoupler, BAM15.
Main Methods:
- Screening of a small molecule chemical library to identify compounds with mitochondrial uncoupling activity but no plasma membrane depolarization.
- Validation of the lead compound, BAM15, in cultured cells to assess its effects on mitochondrial respiration and cytotoxicity compared to FCCP.
- In vivo testing of BAM15 in a mouse model of acute renal ischemic-reperfusion injury.
Main Results:
- Identification and validation of BAM15, a novel mitochondrial protonophore uncoupler with no plasma membrane depolarization.
- BAM15 demonstrated equal potency to FCCP but stimulated higher maximal mitochondrial respiration and exhibited reduced cytotoxicity in cultured cells.
- BAM15 conferred dose-dependent protection against acute renal ischemic-reperfusion injury in vivo.
Conclusions:
- BAM15 is a potent mitochondrial uncoupler with a favorable safety profile, lacking off-target effects on the plasma membrane.
- BAM15 serves as a valuable research tool for studying mitochondrial function without confounding artifacts.
- The reduced toxicity and demonstrated therapeutic efficacy in an injury model suggest potential for BAM15 in treating diseases associated with mitochondrial dysfunction.
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