Related Experiment Video
Updated: Jun 27, 2026

Evaluation of Bioenergetic Function in Cerebral Vascular Endothelial Cells
Published on: November 19, 2016
The Krebs cycle and mitochondrial mass are early victims of endothelial dysfunction: proteomic approach
Francesco Addabbo1, Brian Ratliff, Hyeong-Cheon Park
1Department of Medicine, Renal Research Institute, Division of Nephrology, New York Medical College, Valhalla, NY 10595, USA.
Abstract:
Endothelial cell dysfunction is associated with bioavailable nitric oxide deficiency and an excessive generation of reactive oxygen species. We modeled this condition by chronically inhibiting nitric oxide generation with subpressor doses of N(G)-monomethyl-L-arginine (L-NMMA) in C57B6 and Tie-2/green fluorescent protein mouse strains. L-NMMA-treated mice exhibited a slight reduction in vasorelaxation ability, as well as detectable abnormalities in soluble adhesion molecules (soluble intercellular adhesion molecule-1 and vascular cellular adhesion molecule-1, and matrix metalloproteinase 9), which represent surrogate indicators of endothelial dysfunction. Proteomic analysis of the isolated microvasculature using 2-dimensional gel electrophoresis and matrix-assisted laser desorption/ionization time-of-flight mass spectroscopy revealed abnormal expression of a cluster of mitochondrial enzymes, which was confirmed using immunodetection. Aconitase-2 and enoyl-CoA-hydratase-1 expression levels were decreased in L-NMMA-treated animals; this phenotype was absent in nitric oxide synthase-1 and -3 knockout mice. Depletion of aconitase-2 and enoyl-CoA-hydratase-1 resulted in the inhibition of the Krebs cycle and enhanced pyruvate shunting toward the glycolytic pathway. To assess mitochondrial mass in vivo, co-localization of green fluorescent protein and MitoTracker fluorescence was detected by intravital microscopy. Quantitative analysis of fluorescence intensity showed that L-NMMA-treated animals exhibited lower fluorescence of MitoTracker in microvascular endothelia as a result of reduced mitochondrial mass. These findings provide conclusive and unbiased evidence that mitochondriopathy represents an early manifestation of endothelial dysfunction, shifting cell metabolism toward "metabolic hypoxia" through the selective depletion of both aconitase-2 and enoyl-CoA-hydratase-1. These findings may contribute to an early preclinical diagnosis of endothelial dysfunction.
Insights
Endothelial cell dysfunction, marked by nitric oxide deficiency, leads to mitochondriopathy. This early manifestation involves decreased mitochondrial enzymes, impacting cell metabolism and potentially enabling preclinical diagnosis.
Area of Science:
- Biomedical Science
- Cellular Biology
- Mitochondrial Medicine
Background:
- Endothelial cell dysfunction is linked to nitric oxide (NO) deficiency and increased reactive oxygen species.
- Surrogate markers like soluble adhesion molecules and matrix metalloproteinase 9 indicate endothelial dysfunction.
Purpose of the Study:
- To investigate the early metabolic changes in endothelial cells during dysfunction.
- To identify specific molecular alterations in the microvasculature associated with NO deficiency.
Main Methods:
- Modeling endothelial dysfunction using N(G)-monomethyl-L-arginine (L-NMMA) to inhibit NO generation in mice.
- Proteomic analysis (2D-PAGE, MALDI-TOF MS) and immunodetection of microvascular enzymes.
- Intravital microscopy to assess mitochondrial mass via MitoTracker fluorescence.
Main Results:
- L-NMMA treatment reduced vasorelaxation and altered soluble adhesion molecules.
- Decreased expression of mitochondrial enzymes aconitase-2 and enoyl-CoA-hydratase-1 was observed.
- Reduced mitochondrial mass and impaired Krebs cycle activity were evident, leading to increased glycolysis.
Conclusions:
- Mitochondriopathy is an early manifestation of endothelial dysfunction.
- Selective depletion of aconitase-2 and enoyl-CoA-hydratase-1 shifts cell metabolism towards 'metabolic hypoxia'.
- These findings may facilitate early preclinical diagnosis of endothelial dysfunction.
Related Concept Videos
Mitochondrial Membranes
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...
