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A Doxorubicin-induced Cardiomyopathy Model in Adult Zebrafish
Published on: June 7, 2018
ATP Synthase Inhibitory Factor-1 Deficiency Attenuates Doxorubicin Cardiotoxicity by Preserving Mitochondrial
Parnia Mobasheran1,2, Ankit Aryal2, Jazmine Aguilar1,2
1Department of Pharmacology and Experimental Therapeutics, School of Graduate Studies, Louisiana State University Health Sciences Center, New Orleans, LA 70112, USA.
Abstract:
Doxorubicin (DOX) remains an effective chemotherapeutic agent, but its clinical use is limited by dose-dependent cardiotoxicity. Mitochondrial dysfunction and metabolic remodeling are central features of DOX-induced cardiac injury. ATP synthase inhibitory factor-1 (IF1) is an endogenous inhibitor of the hydrolytic activity of mitochondrial ATP synthase and has emerged as an important regulator of cellular bioenergetics. Cardiac IF1 expression is increased in multiple pathological conditions; however, its role in chemotherapy-induced cardiotoxicity remains unclear. Here, we investigated the contribution of IF1 to DOX-induced cardiotoxicity using male C57BL/6J wild-type (WT) and IF1 knockout (IF1KO) mice, isolated cardiac mitochondria, cultured neonatal cardiomyocytes, and AC16 human cardiomyocytes. Cardiac function was assessed by echocardiography, mitochondrial function by high-resolution respirometry and Seahorse metabolic flux analysis, and myocardial injury by histological and ultrastructural analyses. DOX treatment markedly increased cardiac IF1 protein levels despite reduced IF1 mRNA expression. IF1 deficiency enhanced mitochondrial respiration in isolated cardiac mitochondria and cultured cardiomyocytes under both basal and DOX-stressed conditions. IF1KO mice exhibited attenuated cardiac dysfunction and improved myocardial ultrastructure following DOX treatment compared with WT mice. In AC16 cardiomyocytes exposed to DOX, overexpression of WT IF1 improved cellular metabolic activity but provided only limited preservation of mitochondrial respiratory capacity. In contrast, overexpression of the dominant-negative IF1 mutant (IF1E30A) not only improved metabolic activity but also preserved mitochondrial respiration. These findings identify IF1 as a key regulator of metabolic adaptation during DOX stress. Upregulation of functional IF1 may represent an adaptive response that promotes glycolytic ATP production during mitochondrial stress, whereas inhibition of IF1 activity preserves metabolic activity primarily through maintenance of mitochondrial function. Collectively, these findings provide new insights into the role of IF1 in DOX-induced cardiomyopathy and highlight IF1 as a potential therapeutic target in cardio-oncology.
Insights
Doxorubicin (DOX) causes heart damage by affecting mitochondria. ATP synthase inhibitory factor-1 (IF1) plays a key role in this process, with its inhibition potentially protecting the heart from DOX-induced cardiotoxicity.
Area of Science:
- Cardiology
- Biochemistry
- Molecular Biology
Background:
- Doxorubicin (DOX) is a vital chemotherapy drug, but its use is limited by cardiotoxicity.
- Mitochondrial dysfunction and altered metabolism are hallmarks of DOX-induced cardiac injury.
- ATP synthase inhibitory factor-1 (IF1) regulates mitochondrial ATP synthesis, but its role in chemotherapy-induced cardiotoxicity is unknown.
Purpose of the Study:
- To investigate the role of IF1 in doxorubicin-induced cardiotoxicity.
- To determine if modulating IF1 activity can protect against DOX-induced cardiac injury.
Main Methods:
- Utilized wild-type and IF1 knockout mice, isolated cardiac mitochondria, and cultured cardiomyocytes (neonatal and human AC16).
- Assessed cardiac function via echocardiography, mitochondrial function through respirometry and metabolic flux analysis.
- Evaluated myocardial injury using histological and ultrastructural analyses.
Main Results:
- DOX treatment increased cardiac IF1 protein levels.
- IF1 deficiency improved mitochondrial respiration and attenuated cardiac dysfunction and ultrastructural damage post-DOX.
- Overexpression of a dominant-negative IF1 mutant preserved metabolic activity and mitochondrial respiration in DOX-treated cardiomyocytes.
Conclusions:
- IF1 is a critical regulator of metabolic adaptation to DOX stress.
- Upregulated IF1 may support glycolysis during mitochondrial stress, while IF1 inhibition preserves mitochondrial function.
- Targeting IF1 presents a potential therapeutic strategy in cardio-oncology to mitigate DOX-induced cardiotoxicity.
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