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Identification of Cyclin-dependent Kinase 1 Specific Phosphorylation Sites by an In Vitro Kinase Assay
Published on: May 3, 2018
Metabolic remodeling of cardiomyocytes identified in phosphoinositide-dependent kinase 1-deficient mice
Chen Li1, Yan Niu1, Hong Zheng1
1School of Pharmaceutical Sciences, Institute of Metabonomics & Medical NMR, Wenzhou Medical University, Wenzhou 325035, China.
Insights
Disrupting phosphoinositide-dependent protein kinase-1 (PDK1) in mice caused heart failure (HF) with altered metabolism. Metabolic dysfunction, including changes in key metabolites and reduced oxygen consumption, precedes heart changes in PDK1-deficient mice.
Area of Science:
- Biochemistry
- Cardiology
- Metabolomics
Background:
- Metabolic remodeling is crucial in heart failure (HF) pathophysiology.
- Disruption of phosphoinositide-dependent protein kinase-1 (PDK1) leads to severe HF, but its metabolic impact is unclear.
Purpose of the Study:
- To investigate the metabolic alterations in mice lacking PDK1.
- To understand the role of metabolic dysfunction in PDK1-deficient heart failure.
Main Methods:
- Utilized 1H nuclear magnetic resonance (NMR)-based metabolomics in Pdk1-deficient mice.
- Analyzed metabolic profiles and oxygen consumption rates in H9C2 cells with PDK1 knockdown.
Main Results:
- Metabolic dysfunction was evident by 4 weeks, preceding morphological changes.
- Increased acetate, glutamate, glutamine, and O-phosphocholine; decreased lactate, alanine, glycine, taurine, choline, fumarate, IMP, AMP, and ATP observed.
- PDK1 knockdown reduced oxygen consumption rates in H9C2 cells.
Conclusions:
- Metabolic disruption and impaired mitochondrial activity are implicated in the pathogenesis of HF associated with PDK1 deletion.
- Metabolomic profiling provides insights into HF mechanisms.
Abstract:
Metabolic remodeling plays an essential role in the pathophysiology of heart failure (HF). Many studies have shown that the disruption of phosphoinositide-dependent protein kinase-1 (PDK1) caused severe and lethal HF; however, the metabolic pattern of PDK1 deletion remains ambiguous. 1H nuclear magnetic resonance-based metabolomics was applied to explore the altered metabolic pattern in Pdk1-deficient mice. Principle component analysis showed significant separation as early as 4 weeks of age, and dysfunction of metabolism precedes a morphological change in Pdk1-deficient mice. A time trajectory plot indicated that disturbed metabolic patterns were related to the pathological process of the HF in Pdk1-deficient mice, rather than the age of mice. Metabolic profiles demonstrated significantly increased levels of acetate, glutamate, glutamine, and O-phosphocholine in Pdk1 deletion mice. Levels of lactate, alanine, glycine, taurine, choline, fumarate, IMP, AMP, and ATP were significantly decreased compared with controls. Furthermore, PDK1 knockdown decreased the oxygen consumption rate in H9C2 cells as determined using a Seahorse XF96 Analyzer. These findings imply that the disruption of metabolism and impaired mitochondrial activity might be involved in the pathogenesis of HF with PDK1 deletion.
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