Related Experiment Video
Updated: Aug 9, 2025

Improved Rodent Model of Myocardial Ischemia and Reperfusion Injury
Published on: March 7, 2022
Nicotinamide riboside kinase-2 regulates metabolic adaptation in the ischemic heart
Hezlin Marzook1, Anamika Gupta1, Dhanendra Tomar2
1Research Institute of Medical and Health Sciences, University of Sharjah, P.O. 27272 , Sharjah, United Arab Emirates.
Abstract:
Ischemia-induced metabolic remodeling plays a critical role in the pathogenesis of adverse cardiac remodeling and heart failure however, the underlying molecular mechanism is largely unknown. Here, we assess the potential roles of nicotinamide riboside kinase-2 (NRK-2), a muscle-specific protein, in ischemia-induced metabolic switch and heart failure through employing transcriptomic and metabolomic approaches in ischemic NRK-2 knockout mice. The investigations revealed NRK-2 as a novel regulator of several metabolic processes in the ischemic heart. Cardiac metabolism and mitochondrial function and fibrosis were identified as top dysregulated cellular processes in the KO hearts post-MI. Several genes linked to mitochondrial function, metabolism, and cardiomyocyte structural proteins were severely downregulated in the ischemic NRK-2 KO hearts. Analysis revealed significantly upregulated ECM-related pathways which was accompanied by the upregulation of several key cell signaling pathways including SMAD, MAPK, cGMP, integrin, and Akt in the KO heart post-MI. Metabolomic studies identified profound upregulation of metabolites mevalonic acid, 3,4-dihydroxyphenylglycol, 2-penylbutyric acid, and uridine. However, other metabolites stearic acid, 8,11,14-eicosatrienoic acid, and 2-pyrrolidinone were significantly downregulated in the ischemic KO hearts. Taken together, these findings suggest that NRK-2 promotes metabolic adaptation in the ischemic heart. The aberrant metabolism in the ischemic NRK-2 KO heart is largely driven by dysregulated cGMP and Akt and mitochondrial pathways. KEY MESSAGES: Post-myocardial infarction metabolic switch critically regulates the pathogenesis of adverse cardiac remodeling and heart failure. Here, we report NRK-2 as a novel regulator of several cellular processes including metabolism and mitochondrial function post-MI. NRK-2 deficiency leads to downregulation of genes important for mitochondrial pathway, metabolism, and cardiomyocyte structural proteins in the ischemic heart. It was accompanied by upregulation of several key cell signaling pathways including SMAD, MAPK, cGMP, integrin, and Akt and dysregulation of numerous metabolites essential for cardiac bioenergetics. Taken together, these findings suggest that NRK-2 is critical for metabolic adaptation of the ischemic heart.
Insights
Nicotinamide riboside kinase-2 (NRK-2) is crucial for heart adaptation after myocardial infarction. Its absence disrupts cardiac metabolism and mitochondrial function, worsening heart failure. NRK-2 promotes metabolic adaptation in the ischemic heart.
Area of Science:
- Cardiovascular Biology
- Metabolic Regulation
- Molecular Cardiology
Background:
- Ischemia-induced metabolic remodeling is key in heart failure pathogenesis.
- The molecular mechanisms of this metabolic switch remain largely unknown.
- Nicotinamide riboside kinase-2 (NRK-2) is a muscle-specific protein with potential roles in cardiac metabolism.
Purpose of the Study:
- To investigate the role of NRK-2 in ischemia-induced metabolic changes in the heart.
- To understand the molecular mechanisms underlying cardiac remodeling and heart failure in NRK-2 deficient mice post-myocardial infarction (MI).
Main Methods:
- Transcriptomic and metabolomic analyses were performed on ischemic NRK-2 knockout (KO) mouse hearts.
- Comparative analysis of gene and metabolite profiles between wild-type and KO hearts post-MI.
Main Results:
- NRK-2 deficiency led to dysregulated cardiac metabolism, mitochondrial function, and increased fibrosis post-MI.
- Downregulation of genes involved in mitochondrial function, metabolism, and cardiomyocyte structure was observed in KO hearts.
- Upregulation of ECM-related pathways and signaling pathways (SMAD, MAPK, cGMP, integrin, Akt) was noted in KO hearts.
- Significant alterations in specific metabolites, including mevalonic acid and uridine, were identified.
Conclusions:
- NRK-2 acts as a novel regulator of metabolic adaptation in the ischemic heart.
- Aberrant cardiac metabolism in NRK-2 KO hearts is linked to dysregulated cGMP, Akt, and mitochondrial pathways.
- NRK-2 is critical for maintaining cardiac metabolic homeostasis and preventing adverse remodeling post-MI.
More Related Videos
08:01Semi-Minimal Invasive Method to Induce Myocardial Infarction in Rats and the Assessment of Cardiac Function by an Isolated Working Heart System
Published on: June 11, 2020
08:19Transfer of Manipulated Tumor-associated Neutrophils into Tumor-Bearing Mice to Study their Angiogenic Potential In Vivo
Published on: July 20, 2019
Related Concept Videos
Regulation of Metabolism
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
Ischemic Heart Disease: Overview
Atherosclerosis, the primary malefactor, orchestrates this dangerous condition. It manifests as the accumulation of fatty deposits, akin to insidious plaques, within arterial walls. As time elapses, these plaques metamorphose, hardening and...
Regulation of Heart Rates
The SNS increases heart rate through the release of norepinephrine and epinephrine, which act on beta-1 adrenergic receptors in the heart. This action increases the rate of depolarization in the sinoatrial (SA) node, the heart's...
Regulation of the Cardiovascular System
The regulation of the cardiovascular system involves the autonomic nervous system (ANS), baroreceptors, and chemoreceptors, ensuring that heart rate and blood pressure are appropriately modulated in response to varying physiological demands.
The ANS comprises two main divisions: the sympathetic and parasympathetic nervous systems. The sympathetic nervous system enhances...
Nitric Oxide Signaling Pathway