Free fatty acids repress the GLUT4 gene expression in cardiac muscle via novel response elements

Michal Armoni1, Chava Harel, Fabiana Bar-Yoseph

  • 1Institute of Endocrinology, Diabetes and Metabolism, Rambam Medical Center and B. Rappaport Faculty of Medicine, Technion-Israel Institute of Technology, Haifa 31096, Israel.

Insights

Hyperlipidemia reduces cardiac GLUT4 protein by affecting gene expression. High free fatty acids, like arachidonic acid, play a key role in this process, impacting glucose metabolism in the heart.

Area of Science:

  • Cardiovascular Biology
  • Molecular Endocrinology
  • Metabolic Regulation

Background:

  • Hyperlipidemia (HL) disrupts cardiac glucose homeostasis through unclear molecular pathways.
  • Understanding HL's impact on cardiac gene expression is crucial for metabolic health.

Purpose of the Study:

  • To investigate the molecular mechanisms by which hyperlipidemia regulates GLUT4 and peroxisome proliferator-activated receptor (PPAR) gamma gene expression in human cardiac muscle.
  • To identify specific fatty acid effects on cardiac gene transcription.

Main Methods:

  • Analysis of human cardiac muscle biopsies from patients with HL and/or type 2 diabetes mellitus.
  • Reporter gene assays in H9C2 cardiomyotubes using varying fatty acid concentrations.
  • 5'-Deletion analysis and electromobility shift assays to map promoter regions and protein binding.

Main Results:

  • Lower GLUT4 protein levels (30%) observed in HL patients, while mRNA remained unchanged.
  • Reduced PPARgamma mRNA levels (30-50%) in HL patients.
  • Arachidonic acid (AA) repressed GLUT4 and PPARgamma promoter activity in vitro, identifying specific regulatory regions on the GLUT4 promoter.

Conclusions:

  • Hyperlipidemia modulates cardiac GLUT4 gene expression via a complex mechanism involving free fatty acids.
  • Arachidonic acid directly impacts GLUT4 and PPARgamma gene transcription in cardiac cells.
  • Identified novel response elements on the GLUT4 promoter affected by AA, suggesting new therapeutic targets.

Related Concept Videos

Cell Specific Gene Expression01:58

Cell Specific Gene Expression

Multicellular organisms contain a variety of structurally and functionally distinct cell types, but the DNA in all the cells originated from the same parent cells. The differences in the cells can be attributed to the differential gene expression. Liver cells, whose functions include detoxification of blood, production of bile to metabolize fats, and synthesis of proteins essential for metabolism, must express a specific set of genes to perform their functions. Gene expression also varies with...
GPCRs Regulate Adenylyl Cylase Activity01:09

GPCRs Regulate Adenylyl Cylase Activity

Some GPCRs transmit signals through adenylyl cyclase (AC), a transmembrane enzyme. AC helps synthesize second messenger cyclic adenosine monophosphate (cAMP). AC catalyzes cyclization reaction and converts ATP to cAMP by releasing a pyrophosphate. The pyrophosphate is further hydrolyzed to phosphate by the enzyme pyrophosphatase, which drives cAMP synthesis to completion. However, cAMP is rapidly degraded to 5′ AMP by the enzymes phosphodiesterase (PDE), preventing overstimulation of cells.
Two...
Master Transcription Regulators02:23

Master Transcription Regulators

Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a  complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
cAMP-dependent Protein Kinase Pathways01:25

cAMP-dependent Protein Kinase Pathways

Cyclic Adenosine Monophosphate (cAMP) is an essential second messenger that activates protein kinase A (PKA) and regulates various biological processes. A single epinephrine molecule binds to GPCR and activates several heterotrimeric G proteins, each stimulating multiple adenylyl cyclase, amplifying the signal, and synthesizing large numbers of cAMP molecules. Small changes in cAMP concentration affect PKA activity. The binding of four cAMP molecules induces a conformational change in PKA,...
Fats as Energy Storage Molecules01:06

Fats as Energy Storage Molecules

Triglycerides are a form of long-term energy storage molecules. They are made of glycerol and three fatty acids. To obtain energy from fat, triglycerides must first be broken down by hydrolysis into their two principal components, fatty acids and glycerol. This process, called lipolysis, takes place in the cytoplasm. The resulting fatty acids are oxidized by β-oxidation into acetyl-CoA, which is used by the Krebs cycle. The glycerol that is released from triglycerides after lipolysis directly...
General Transcription Factors01:30

General Transcription Factors

Tissue-specific transcription factors contribute to diverse cellular functions in mammals. For example, the gene for beta globin, a major component of hemoglobin, is present in all cells of the body. However, it is only expressed in red blood cells because the transcription factors that can bind to the promoter sequences of the beta globin gene are only expressed in these cells. Tissue-specific transcription factors also ensure that mutations in these factors may impair only the function of...