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Updated: Jul 19, 2026

Assessment of Human Adipose Tissue Microvascular Function Using Videomicroscopy
Published on: September 29, 2017
The mechanism of flow-induced dilation in human adipose arterioles involves hydrogen peroxide during CAD
Shane A Phillips1, O A Hatoum, David D Gutterman
1Cardiovascular Center, Dept. of Medicine, Medical College of Wisconsin, 8701 Watertown Plank Rd., Milwaukee, WI 53226, USA. shanep@mcw.edu
Insights
In coronary artery disease (CAD), flow-induced dilation (FID) in visceral fat shifts from nitric oxide to hydrogen peroxide (H₂O₂) mediation. This reveals microvascular changes in adipose tissue linked to CAD.
Area of Science:
- Vascular Physiology
- Cardiovascular Research
- Metabolic Syndrome
Background:
- Flow-induced dilation (FID) regulates tissue blood flow via endothelium-derived factors.
- Impaired FID in conduit arteries is a hallmark of coronary artery disease (CAD).
- Visceral adipose tissue is increasingly recognized for its role in CAD pathogenesis.
Purpose of the Study:
- To elucidate the mechanism of FID in human visceral adipose arterioles.
- To investigate if CAD is associated with altered endothelial function in visceral fat.
- To determine the specific mediators of FID in visceral fat with and without CAD.
Main Methods:
- Isolated visceral fat arterioles from patients with and without CAD were used.
- Endothelium-dependent vasodilation was assessed under flow changes after endothelin-1 constriction.
- The roles of nitric oxide (l-NAME), prostaglandins (indomethacin), and reactive oxygen species (DCF, dihydroethidium, polyethylene glycol-catalase, H₂O₂) were examined.
Main Results:
- In non-CAD patients, FID was nitric oxide-dependent.
- In CAD patients, FID was not affected by l-NAME but involved oxidative metabolites and superoxide production.
- Hydrogen peroxide (H₂O₂) mediated FID in CAD patients, and exogenous H₂O₂ caused similar relaxations in both groups.
Conclusions:
- Visceral fat arterioles exhibit nitric oxide-dependent FID in the absence of CAD.
- In the presence of CAD, hydrogen peroxide (H₂O₂) replaces nitric oxide as the mediator of endothelium-dependent FID in visceral fat.
- Adverse microvascular alterations in human visceral adipose tissue are associated with CAD.
Abstract:
Flow-induced dilation (FID) is an important physiological stimulus that regulates tissue blood flow and is mediated by endothelium-derived factors that play a role in vascular integrity and the development of atherosclerosis. In coronary artery disease (CAD), conduit artery FID is impaired. The purpose of this study was to determine the mechanism of FID in human visceral adipose and examine whether the presence of conduit coronary atherosclerosis is associated with altered endothelial function in visceral fat. FID was determined in isolated visceral fat arterioles from patients with and without CAD. After constriction with endothelin-1, increases in flow produced an endothelium-dependent vasodilation that was sensitive to N(omega)-nitro-l-arginine methyl ester (l-NAME) in visceral fat arterioles from patients without CAD. In contrast, l-NAME alone or in combination with indomethacin had no effect on FID in similarly located arterioles from patients with CAD. Flow increased dichlorofluorescein (DCF) and dihydroethidium fluorescence accumulation in arterioles from patients with CAD versus without, indicative of the production of oxidative metabolites and superoxide, respectively. Both the dilation and DCF fluorescence to flow were reduced in the presence of the H(2)O(2) scavenger polyethylene glycol-catalase. Exogenous H(2)O(2) elicited similar relaxations of arterioles from patients in both groups. These data indicate that FID in visceral fat arterioles is nitric oxide dependent in the absence of known CAD. However, in the presence of CAD, H(2)O(2) replaces nitric oxide as the mediator of endothelium-dependent FID. This study provides evidence that adverse microvascular changes during CAD are evident in human visceral adipose, a tissue associated with CAD.
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