Arginine metabolism: nitric oxide and beyond
Open Access
- 15 November 1998
- journal article
- review article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 336 (1) , 1-17
- https://doi.org/10.1042/bj3360001
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. Correspondence may be addressed to either Dr. G. Wu (e-mail g-wu@tamu.edu) or Dr. S. M. Morris, Jr. (e-mail sid@hoffman.mgen.pitt.edu) at the addresses given.Keywords
This publication has 99 references indexed in Scilit:
- Cytochrome P450 catalyzes the oxidation of Nω-hydroxy-L-arginine by NADPH and O2 to nitric oxide and citrullineBiochemical and Biophysical Research Communications, 1992
- Formation of nitrogen oxides and citrulline upon oxidation of Nω-hydroxy-L-arginine by hemeproteinsBiochemical and Biophysical Research Communications, 1992
- Arginine remains an essential amino acid after liver transplantation in urea cycle enzyme deficienciesJournal of Inherited Metabolic Disease, 1991
- Nitric oxide: A cytotoxic activated macrophage effector moleculeBiochemical and Biophysical Research Communications, 1988
- Role of arginine-tRNA in protein degradation by the ubiquitin pathwayNature, 1987
- The obligatory role of endothelial cells in the relaxation of arterial smooth muscle by acetylcholineNature, 1980
- Induction of ornithine decarboxylase in macrophages by bacterial lipopolysaccharides (LPS) and mycobacterial cell wall materialLife Sciences, 1980
- Ammonia Intoxication in the Near-Adult Cat as a Result of a Dietary Deficiency of ArginineScience, 1978
- Genetic control of glucuronidase induction in miceJournal of Molecular Biology, 1973
- Hyperammonemia resulting from intravenous alimentation using a mixture of synthetic L-amino acids: A preliminary reportThe Journal of Pediatrics, 1972