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Development of novel arginase inhibitors for therapy of endothelial dysfunction
Jochen Steppan1, Daniel Nyhan, Dan E Berkowitz
1Department of Anesthesiology and Critical Care Medicine, The Johns Hopkins Medical Institutions , Baltimore, MD , USA.
Abstract:
Endothelial dysfunction and resulting vascular pathology have been identified as an early hallmark of multiple diseases, including diabetes mellitus. One of the major contributors to endothelial dysfunction is a decrease in nitric oxide (NO) bioavailability, impaired NO signaling, and an increase in the amount of reactive oxygen species (ROS). In the endothelium NO is produced by endothelial nitric oxide synthase (eNOS), for which l-arginine is a substrate. Arginase, an enzyme critical in the urea cycle also metabolizes l-arginine, thereby directly competing with eNOS for their common substrate and constraining its bioavailability for eNOS, thereby compromising NO production. Arginase expression and activity is upregulated in many cardiovascular diseases including ischemia reperfusion injury, hypertension, atherosclerosis, and diabetes mellitus. More importantly, since the 1990s, specific arginase inhibitors such as N-hydroxy-guanidinium or N-hydroxy-nor-l-arginine, and boronic acid derivatives, such as, 2(S)-amino-6-boronohexanoic acid, and S-(2-boronoethyl)-l-cysteine, that can bridge the binuclear manganese cluster of arginase have been developed. These highly potent and specific inhibitors can now be used to probe arginase function and thereby modulate the redox milieu of the cell by changing the balance between NO and ROS. Inspired by this success, drug discovery programs have recently led to the identification of α-α-disubstituted amino acid based arginase inhibitors [such as (R)-2-amino-6-borono-2-(2-(piperidin-1-yl)ethyl)hexanoic acid], that are currently under early investigation as therapeutics. Finally, some investigators concentrate on identification of plant derived compounds with arginase inhibitory capability, such as piceatannol-3'-O-β-d-glucopyranoside (PG). All of these synthesized or naturally derived small molecules may represent novel therapeutics for vascular disease particularly that associated with diabetes.
Insights
Arginase enzyme activity contributes to endothelial dysfunction by reducing nitric oxide (NO) availability. Novel arginase inhibitors, including synthesized and plant-derived compounds, show promise for treating vascular diseases, especially in diabetes.
Area of Science:
- Biochemistry
- Vascular Biology
- Pharmacology
Background:
- Endothelial dysfunction, marked by reduced nitric oxide (NO) and increased reactive oxygen species (ROS), is an early indicator of diseases like diabetes mellitus.
- Arginase competes with endothelial nitric oxide synthase (eNOS) for L-arginine, decreasing NO bioavailability and exacerbating endothelial dysfunction.
- Elevated arginase activity is observed in various cardiovascular conditions, including hypertension, atherosclerosis, and diabetes.
Purpose of the Study:
- To explore the role of arginase in endothelial dysfunction and vascular pathology.
- To review the development and therapeutic potential of arginase inhibitors.
- To highlight novel small molecules, both synthetic and natural, targeting arginase for vascular disease treatment.
Main Methods:
- Review of scientific literature on arginase, endothelial dysfunction, and nitric oxide metabolism.
- Analysis of established and emerging arginase inhibitors, including N-hydroxy-guanidinium, boronic acid derivatives, and alpha-alpha-disubstituted amino acids.
- Investigation of naturally derived compounds, such as piceatannol-3'-O-β-d-glucopyranoside (PG), for arginase inhibitory properties.
Main Results:
- Specific arginase inhibitors effectively modulate the balance between NO and ROS, impacting cellular redox state.
- Novel synthetic arginase inhibitors, including alpha-alpha-disubstituted amino acids, are under early investigation as potential therapeutics.
- Plant-derived compounds like PG demonstrate arginase inhibitory capabilities.
Conclusions:
- Arginase plays a critical role in endothelial dysfunction, making it a key therapeutic target.
- Developed arginase inhibitors offer a means to restore NO bioavailability and mitigate vascular pathology.
- Both synthetic and naturally derived small molecules targeting arginase hold significant therapeutic potential for vascular diseases, particularly those linked to diabetes.
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