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Published on: February 13, 2019
Alpha-ketoglutarate is required for chronic hypoxia-induced cardiac remodeling
Daishi Tang1, Yong Gu1, Shasha Chen2
1Digestive System Department, Shaanxi Provincial Crops Hospital of Chinese People's Armed Police Force, Xi'an, People's Republic of China.
Insights
Chronic hypoxia causes cardiac hypertrophy by increasing alpha-ketoglutarate (α-KG). This metabolite drives gene transcription for cardiac remodeling, linking metabolic changes to heart disease.
Area of Science:
- Cardiovascular Biology
- Metabolic Regulation
- Epigenetics
Background:
- Chronic hypoxia (CH) is linked to cardiovascular diseases, notably cardiac hypertrophy.
- Metabolic remodeling occurs in the hypoxic heart, but its connection to hypertrophy is unclear.
Purpose of the Study:
- To investigate the mechanistic link between metabolic remodeling and cardiac hypertrophy in chronic hypoxia.
- To determine the role of alpha-ketoglutarate (α-KG) in hypoxia-induced cardiac changes.
Main Methods:
- Utilized wild-type C57BL/6J mice subjected to 4 weeks of CH.
- Assessed cardiac effects using echocardiography and morphological analysis.
- Measured cardiac α-KG content and manipulated its degradation; silenced KDM5 enzyme.
Main Results:
- CH induced significant cardiac hypertrophy without altering cardiac function.
- Elevated cardiac α-KG was observed in CH hearts.
- Promoting α-KG degradation prevented hypertrophy but caused dysfunction.
- α-KG promoted hypertrophy-related gene transcription via histone methylation, involving KDM5.
Conclusions:
- α-KG is essential for CH-induced cardiac remodeling.
- This study bridges the understanding between metabolic intermediates and cardiac remodeling in hypoxic hearts.
- α-KG links metabolic alterations to epigenetic modifications driving cardiac hypertrophy.
Abstract:
Chronic hypoxia (CH) is commonly associated with various cardiovascular diseases, with cardiac hypertrophy being the most frequently observed alteration. Metabolic remodeling is another consequence seen in the hypoxic heart. However, the mechanistic linkage between metabolic remodeling and cardiac hypertrophy in the hypoxic heart remains unclear. In this study, wild-type C57BL/6J mice were subjected to CH for 4 wk. Echocardiography and morphological analysis were used to assess the cardiac effects. We found that 4 wk of CH led to significant cardiac hypertrophy in the mice, whereas cardiac function remained unchanged compared with normoxic mice. In addition, CH induced an elevation in cardiac alpha-ketoglutarate (α-KG) content. Promoting α-KG degradation in the CH hearts prevented CH-induced cardiac hypertrophy but led to noticeable cardiac dysfunction. Mechanistically, α-KG promoted the transcription of hypertrophy-related genes by regulating histone methylation. Silencing lysine-specific demethylase 5 (KDM5), a histone demethylation enzyme, blunted α-KG-induced transcription of hypertrophy-related genes. These data suggest that α-KG is required for CH-induced cardiac remodeling, thus establishing a connection between metabolic changes and cardiac remodeling in hypoxic hearts.NEW & NOTEWORTHY We reported that alpha-ketoglutarate (α-KG) is indispensable for chronic hypoxia (CH)-induced cardiac remodeling, which builds the bridge between metabolic intermediates and cardiac remodeling.
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