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Published on: August 1, 2016
ATPase Inhibitory Factor-1 Disrupts Mitochondrial Ca2+ Handling and Promotes Pathological Cardiac Hypertrophy through
Mario G Pavez-Giani1, Pablo I Sánchez-Aguilera1, Nils Bomer1
1Department of Cardiology, University Medical Center Groningen, University of Groningen, P.O. Box 30.001, 9700 RB Groningen, The Netherlands.
Insights
ATPase inhibitory factor-1 (IF1) is upregulated in heart failure (HF), promoting pathological cardiac remodeling and mitochondrial dysfunction. This study reveals a novel, ATP-synthase-independent role for IF1 in calcium handling and cardiac hypertrophy.
Area of Science:
- Cardiovascular Biology
- Mitochondrial Physiology
- Molecular Cardiology
Background:
- ATPase inhibitory factor-1 (IF1) is known to preserve ATP during respiratory collapse.
- Its function under normal physiological conditions, particularly in heart failure (HF), remains unclear.
Purpose of the Study:
- To investigate the role of IF1 in pathological cardiomyocyte hypertrophy and mitochondrial dysfunction in the context of HF.
- To elucidate the mechanisms underlying IF1's effects, including its potential ATP-synthase-independent functions.
Main Methods:
- Cardiac IF1 expression was analyzed in mouse and human HF models.
- Adenoviral IF1 expression was used in primary cardiomyocytes to assess hypertrophy and metabolic changes.
- Mitochondrial function, calcium handling, and signaling pathways (CaMKII) were investigated.
Main Results:
- Cardiac IF1 expression is increased in HF, correlating with fetal-like gene programs.
- IF1 induces pathological cardiomyocyte hypertrophy, mitochondrial oxidative stress, and impaired respiration.
- IF1 promotes mitochondrial fragmentation and disrupts calcium handling, leading to sarcoplasmic reticulum overload, independent of ATP synthase binding.
- IF1-induced hypertrophy is mediated by cytosolic calcium-calmodulin kinase II (CaMKII) activation.
Conclusions:
- IF1 is a novel component of the fetal-like gene program contributing to mitochondrial dysfunction and cardiac remodeling in HF.
- IF1 exerts pathological effects through an ATP-synthase-independent mechanism involving mitochondrial calcium handling and CaMKII signaling.
Abstract:
ATPase inhibitory factor-1 (IF1) preserves cellular ATP under conditions of respiratory collapse, yet the function of IF1 under normal respiring conditions is unresolved. We tested the hypothesis that IF1 promotes mitochondrial dysfunction and pathological cardiomyocyte hypertrophy in the context of heart failure (HF). Methods and results: Cardiac expression of IF1 was increased in mice and in humans with HF, downstream of neurohumoral signaling pathways and in patterns that resembled the fetal-like gene program. Adenoviral expression of wild-type IF1 in primary cardiomyocytes resulted in pathological hypertrophy and metabolic remodeling as evidenced by enhanced mitochondrial oxidative stress, reduced mitochondrial respiratory capacity, and the augmentation of extramitochondrial glycolysis. Similar perturbations were observed with an IF1 mutant incapable of binding to ATP synthase (E55A mutation), an indication that these effects occurred independent of binding to ATP synthase. Instead, IF1 promoted mitochondrial fragmentation and compromised mitochondrial Ca2+ handling, which resulted in sarcoplasmic reticulum Ca2+ overloading. The effects of IF1 on Ca2+ handling were associated with the cytosolic activation of calcium-calmodulin kinase II (CaMKII) and inhibition of CaMKII or co-expression of catalytically dead CaMKIIδC was sufficient to prevent IF1 induced pathological hypertrophy. Conclusions: IF1 represents a novel member of the fetal-like gene program that contributes to mitochondrial dysfunction and pathological cardiac remodeling in HF. Furthermore, we present evidence for a novel, ATP-synthase-independent, role for IF1 in mitochondrial Ca2+ handling and mitochondrial-to-nuclear crosstalk involving CaMKII.
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