Endothelial Dysfunction: Is There a Hyperglycemia-Induced Imbalance of NOX and NOS?
Cesar A Meza1, Justin D La Favor1, Do-Houn Kim1
1Department of Nutrition, Food & Exercise Sciences, Florida State University, Tallahassee, FL 32306, USA.
Abstract:
NADPH oxidases (NOX) are enzyme complexes that have received much attention as key molecules in the development of vascular dysfunction. NOX have the primary function of generating reactive oxygen species (ROS), and are considered the main source of ROS production in endothelial cells. The endothelium is a thin monolayer that lines the inner surface of blood vessels, acting as a secretory organ to maintain homeostasis of blood flow. The enzymatic production of nitric oxide (NO) by endothelial NO synthase (eNOS) is critical in mediating endothelial function, and oxidative stress can cause dysregulation of eNOS and endothelial dysfunction. Insulin is a stimulus for increases in blood flow and endothelium-dependent vasodilation. However, cardiovascular disease and type 2 diabetes are characterized by poor control of the endothelial cell redox environment, with a shift toward overproduction of ROS by NOX. Studies in models of type 2 diabetes demonstrate that aberrant NOX activation contributes to uncoupling of eNOS and endothelial dysfunction. It is well-established that endothelial dysfunction precedes the onset of cardiovascular disease, therefore NOX are important molecular links between type 2 diabetes and vascular complications. The aim of the current review is to describe the normal, healthy physiological mechanisms involved in endothelial function, and highlight the central role of NOX in mediating endothelial dysfunction when glucose homeostasis is impaired.
Insights
NADPH oxidases (NOX) generate reactive oxygen species (ROS), contributing to endothelial dysfunction in type 2 diabetes. Targeting NOX may prevent vascular complications linked to impaired glucose homeostasis.
Area of Science:
- Cardiovascular Research
- Endocrinology
- Molecular Biology
Background:
- Endothelial cells form a vital monolayer regulating blood flow and homeostasis.
- Endothelial nitric oxide synthase (eNOS) produces nitric oxide (NO), crucial for vasodilation.
- Oxidative stress and dysregulated reactive oxygen species (ROS) production impair endothelial function.
Purpose of the Study:
- To review healthy endothelial function mechanisms.
- To highlight the role of NADPH oxidases (NOX) in endothelial dysfunction.
- To connect NOX activity to impaired glucose homeostasis and vascular complications.
Main Methods:
- Literature review of studies on NOX, ROS, endothelial function, and type 2 diabetes.
- Analysis of physiological mechanisms in endothelial cells.
- Examination of NOX involvement in eNOS uncoupling and vascular dysfunction.
Main Results:
- NADPH oxidases (NOX) are the primary source of ROS in endothelial cells.
- NOX overproduction of ROS contributes to eNOS dysregulation and endothelial dysfunction.
- Aberrant NOX activation is implicated in type 2 diabetes-related vascular complications.
Conclusions:
- NOX enzymes are central to endothelial dysfunction, particularly in conditions of impaired glucose homeostasis.
- Endothelial dysfunction mediated by NOX precedes cardiovascular disease onset.
- Understanding NOX pathways is critical for developing therapeutic strategies against diabetes-associated vascular disease.
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