Taurine ( ; IUPAC: 2-aminoethanesulfonic acid) is a naturally occurring organic compound with the chemical formula H2N−CH2−CH2−SO2−OH in its non-zwitterionic form and H3N+−CH2−CH2−SO−3 in its zwitterionic form, and is a non-proteinogenic amino sulfonic acid widely distributed in mammalian tissues and organs. Structurally, by containing a sulfonic acid group instead of a carboxylic acid group, it is not involved in protein synthesis but is still usually referred to as an amino acid. As non-proteinogenic amino sulfonic acid, it is not encoded by genetic code and is distinguished from the protein-building α-amino acids. Taurine is a major constituent of bile and can be found in the large intestine. It is named after Latin taurus, meaning bull or ox, as it was first isolated from ox bile in 1827 by German scientists Friedrich Tiedemann and Leopold Gmelin. Although taurine is abundant in human organs, it is not an essential human dietary nutrient and is not included among nutrients with a recommended intake level. Among the diverse pathways by which natural taurine can be biosynthesized, its human pathways (primarily in the human liver) are from cysteine and/or methionine. Taurine is commonly sold as a dietary supplement. Taurine is used as a food additive to meet essential dietary intake levels for cats, and supplemental dietary support for dogs and poultry.
Discovery and name Taurine was first isolated from ox bile in 1827 by German scientists Friedrich Tiedemann and Leopold Gmelin. Another German scientist Von H. Demarcay first used its common chemical name Taurine in 1838, derived from the Latin taurus (cognate to Ancient Greek ταῦρος, taûros) meaning bull or ox. It was subsequently identified in human bile in 1846 by Edmund Ronalds.
In nature Taurine is widely distributed and abundant in nature, particularly in animal tissues. and further, as substrates in the biosynthesis of bile salts. Taurine concentrations in human cells may derive from at least three processes:
biosynthesis from the sulfur amino acids (e.g., cysteine); active uptake by a taurine transporter; and the extent of its release from cells by a "volume-sensitive leak pathway". It is not an essential human dietary nutrient, resulting in the absence of taurine from compounds having a Reference Daily Intake. Its role in human physiology is unknown. Taurine is a major constituent of bile, and can be found in the large intestine. Its concentrations in land plants are low or undetectable, but up to a substantial wet weight has been found in algae.
Chemical and biochemical features Taurine exists as a zwitterion H3N+CH2CH2SO−3, as verified by X-ray crystallography. The sulfonic acid has a low pKa ensuring that it is fully ionized to the sulfonate at the pHs found in the intestinal tract.
Biosynthesis Among the diverse pathways by which natural taurine can be biosynthesized, its pathways in the human liver are from cysteine and/or methionine. With regard to the route from cysteine: mammalian taurine synthesis occurs in the liver via the cysteine sulfinic acid pathway. In this pathway, cysteine is first oxidized to its sulfinic acid, catalyzed by the enzyme cysteine dioxygenase. Cysteine sulfinic acid, in turn, is decarboxylated by sulfinoalanine decarboxylase to form hypotaurine. Hypotaurine is enzymatically oxidized to yield taurine by hypotaurine dehydrogenase. Taurine is also produced by the transsulfuration pathway, which converts homocysteine into cystathionine. The cystathionine is then converted to hypotaurine by the sequential action of three enzymes: cystathionine gamma-lyase, cysteine dioxygenase, and cysteine sulfinic acid decarboxylase. Hypotaurine is then oxidized to taurine as described above. A pathway for taurine biosynthesis from serine and sulfate is reported in microalgae, developing chicken embryos, and chick liver. Serine dehydratase converts serine to 2-aminoacrylate, which is converted to cysteic acid by 3′-phosphoadenylyl sulfate:2-aminoacrylate C-sulfotransferase. Cysteic acid is converted to taurine by cysteine sulfinic acid decarboxylase.
Chemical synthesis Synthetic taurine is obtained by the ammonolysis of isethionic acid (2-hydroxyethanesulfonic acid), which in turn is obtained from the reaction of ethylene oxide with aqueous sodium bisulfite. A direct approach involves the reaction of aziridine with sulfurous acid. In 1993, about 5000–6000 tonnes of taurine were produced for commercial purposes: 50% for pet food and 50% in pharmaceutical applications. In the laboratory, taurine can be produced by alkylation of ammonia with bromoethanesulfonate salts. Taurine can be synthesized in the laboratory from aziridines through a ring-opening reaction. The synthesis of taurine in the lab has been patented.
In food Taurine occurs naturally in fish and meat. The mean daily intake from omnivore diets was determined to be around 58 mg (range 9–372 mg), and to be low or negligible from a vegan diet. Typical taurine consumption in the American diet is about 123–178 mg per day.
Notes
Taurine is partially destroyed by heat in processes such as baking and boiling. This is a concern for cat food, as cats have a dietary requirement for taurine and can easily become deficient. Either raw feeding or supplementing taurine can satisfy this requirement. Both lysine and taurine can mask the metallic flavor of potassium chloride, a salt substitute.
Breast milk Taurine is present in breast milk, and has been added to many infant formulas as a measure of prudence since the early 1980s. However, this practice has never been rigorously studied, and as such it has yet to be proven to be necessary, or even beneficial.
Energy drinks and dietary supplements Taurine is an ingredient in some energy drinks in amounts of 1–3 grams per serving.
Research Taurine is not regarded as an essential human dietary nutrient, and has not been assigned recommended intake levels. High-quality clinical studies to determine possible effects of taurine in the body or following dietary supplementation are absent from the literature. Preliminary human studies on the possible effects of taurine supplementation have been inadequate due to low subject numbers, inconsistent designs, and variable doses. In one review of preliminary human studies, use of taurine as a supplement had preventative effects on biomarkers of metabolic syndrome.
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