Critical role of glutamine metabolism in cardiomyocytes under oxidative stress

谷氨酰胺分解 谷氨酰胺酶 谷氨酰胺 氧化应激 柠檬酸循环 新陈代谢 谷胱甘肽 化学 生物化学 氧化磷酸化 细胞内 焊剂(冶金) 谷氨酰胺合成酶 谷氨酸受体 细胞生物学 生物 氨基酸 有机化学 受体
作者
Koichi Watanabe,Manabu Nagao,Ryuji Toh,Yasuhiro Irino,Masakazu Shinohara,Takuya Iino,Sachiko Yoshikawa,Hidekazu Tanaka,Seimi Satomi‐Kobayashi,Tatsuro Ishida,Ken‐ichi Hirata
出处
期刊:Biochemical and Biophysical Research Communications [Elsevier BV]
卷期号:534: 687-693 被引量:58
标识
DOI:10.1016/j.bbrc.2020.11.018
摘要

Metabolic remodeling in cardiomyocytes is deeply associated with the pathogenesis of heart failure (HF). Glutaminolysis is an anaplerotic pathway that incorporates α-ketoglutarate (αKG) derived from glutamine into the tricarboxylic acid (TCA) cycle. It is well known that cancer cells depend on glutamine for their increased energy demand and proliferation; however, the physiological roles of glutamine metabolism in failing hearts remain unclear. To investigate the regulatory mechanisms and biological effects of glutamine metabolism in oxidative stress-induced failing myocardium. The intracellular levels of glutamine, glutamate, and αKG were significantly decreased by H2O2 stimulation in rat neonatal cardiomyocytes (RNCMs). To better understand the metabolic flux in failing myocardium, we performed a stable isotope tracing study and found that glutaminolysis was upregulated in RNCMs under oxidative stress. Consistent with this, the enzymatic activity of glutaminase (Gls), which converts glutamine to glutamate, was augmented in RNCMs treated with H2O2. These findings suggest that glutamine anaplerosis is enhanced in cardiomyocytes under oxidative stress to compensate for the reduction of αKG. Furthermore, the inhibition of Gls reduced cardiac cell viability, ATP production, and glutathione (GSH) synthesis in RNCMs with H2O2 stimulation. Finally, we evaluated the effects of αKG on failing myocardium and observed that dimethyl α-ketoglutarate (DMKG) suppressed oxidative stress-induced cell death likely due to the enhancement of intracellular ATP and GSH levels. Our study demonstrates that under oxidative stress, glutaminolysis is upregulated to compensate for the loss of αKG and its replenishment into the TCA cycle, thereby exerting cardioprotective effects by maintaining ATP and GSH levels. Modulation of glutamine metabolism in failing hearts might provide a new therapeutic strategy for HF.
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