Scinovex
review Open AccessTop 1% cited

Arginine metabolism: nitric oxide and beyond

Biochemical Journal · 1998 · Vol. 336(1) · pp. 1–17
Guoyao WuSidney M. Morris

Abstract

Arginine is one of the most versatile amino acids in animal cells, serving as a precursor for the synthesis not only of proteins but also of nitric oxide, urea, polyamines, proline, glutamate, creatine and agmatine. Of the enzymes that catalyse rate-controlling steps in arginine synthesis and catabolism, argininosuccinate synthase, the two arginase isoenzymes, the three nitric oxide synthase isoenzymes and arginine decarboxylase have been recognized in recent years as key factors in regulating newly identified aspects of arginine metabolism. In particular, changes in the activities of argininosuccinate synthase, the arginases, the inducible isoenzyme of nitric oxide synthase and also cationic amino acid transporters play major roles in determining the metabolic fates of arginine in health and disease, and recent studies have identified complex patterns of interaction among these enzymes. There is growing interest in the potential roles of the arginase isoenzymes as regulators of the synthesis of nitric oxide, polyamines, proline and glutamate. Physiological roles and relationships between the pathways of arginine synthesis and catabolism in vivo are complex and difficult to analyse, owing to compartmentalized expression of various enzymes at both organ (e.g. liver, small intestine and kidney) and subcellular (cytosol and mitochondria) levels, as well as to changes in expression during development and in response to diet, hormones and cytokines. The ongoing development of new cell lines and animal models using cDNA clones and genes for key arginine metabolic enzymes will provide new approaches more clearly elucidating the physiological roles of these enzymes.

Polyamine Metabolism and ApplicationsNitric Oxide and Endothelin EffectsAmino Acid Enzymes and MetabolismArginaseArgininosuccinate synthaseArginineBiochemistryAgmatineNitric oxide synthaseBiologyArgininosuccinate lyaseCatabolismNitric oxide

MeSH terms

AmidinotransferasesAnimalsArginaseArginineBiological TransportCarboxy-LyasesIntestinal MucosaKidneyLiverNitric OxideNitric Oxide Synthase

Funding

  • U.S. Department of Agriculture
  • American Heart Association
  • National Institutes of Health
Citations
2,791
FWCI
13.81
field-weighted impact
References
288
Percentile
99%
vs. same field & year
Citations per year
Cited by
Nitric oxide and the immune response
Nature Immunology · 2001 · 3,381 citations
Nitric oxide deficiency in chronic kidney disease
American Journal of Physiology-Renal Physiology · 2007 · 410 citations
Comparative aspects of implantation
Reproduction · 2009 · 411 citations
The Metabolic Signature of Macrophage Responses
Frontiers in Immunology · 2019 · 1,906 citations
M-1/M-2 Macrophages and the Th1/Th2 Paradigm
The Journal of Immunology · 2000 · 3,202 citations
References
The Metabolic and Molecular Bases of Inherited Disease
Medical Entomology and Zoology · 1995 · 12,175 citations
Nitric oxide synthases in mammals
Biochemical Journal · 1994 · 2,754 citations
Recent advances in the biochemistry of polyamines in eukaryotes
Biochemical Journal · 1986 · 1,581 citations
New insights into the regulation of inducible nitric oxide synthesis
American Journal of Physiology-Endocrinology and Metabolism · 1994 · 575 citations
Nitric oxide: A cytotoxic activated macrophage effector molecule
Biochemical and Biophysical Research Communications · 1988 · 2,032 citations
Endothelium-derived relaxing factor produced and released from artery and vein is nitric oxide.
Proceedings of the National Academy of Sciences · 1987 · 5,041 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.