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Dealing with Methionine/homocysteine Sulfur: Cysteine Metabolism to Taurine and Inorganic Sulfur

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Publisher Wiley
Date 2010 Feb 18
PMID 20162368
Citations 147
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Abstract

Synthesis of cysteine as a product of the transsulfuration pathway can be viewed as part of methionine or homocysteine degradation, with cysteine being the vehicle for sulfur conversion to end products (sulfate, taurine) that can be excreted in the urine. Transsulfuration is regulated by stimulation of cystathionine β-synthase and inhibition of methylene tetrahydrofolate reductase in response to changes in the level of S-adenosylmethionine, and this promotes homocysteine degradation when methionine availability is high. Cysteine is catabolized by several desulfuration reactions that release sulfur in a reduced oxidation state, generating sulfane sulfur or hydrogen sulfide (H₂S), which can be further oxidized to sulfate. Cysteine desulfuration is accomplished by alternate reactions catalyzed by cystathionine β-synthase and cystathionine γ-lyase. Cysteine is also catabolized by pathways that require the initial oxidation of the cysteine thiol by cysteine dioxygenase to form cysteinesulfinate. The oxidative pathway leads to production of taurine and sulfate in a ratio of approximately 2:1. Relative metabolism of cysteine by desulfuration versus oxidative pathways is influenced by cysteine dioxygenase activity, which is low in animals fed low-protein diets and high in animals fed excess sulfur amino acids. Thus, desulfuration reactions dominate when cysteine is deficient, whereas oxidative catabolism dominates when cysteine is in excess. In rats consuming a diet with an adequate level of sulfur amino acids, about two thirds of cysteine catabolism occurs by oxidative pathways and one third by desulfuration pathways. Cysteine dioxygenase is robustly regulated in response to cysteine availability and may function to provide a pathway to siphon cysteine to less toxic metabolites than those produced by cysteine desulfuration reactions.

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References
1.
Linden D, Sha L, Mazzone A, Stoltz G, Bernard C, Furne J . Production of the gaseous signal molecule hydrogen sulfide in mouse tissues. J Neurochem. 2008; 106(4):1577-85. PMC: 2836856. DOI: 10.1111/j.1471-4159.2008.05502.x. View

2.
Dominy Jr J, Hirschberger L, Coloso R, Stipanuk M . In vivo regulation of cysteine dioxygenase via the ubiquitin-26S proteasome system. Adv Exp Med Biol. 2006; 583:37-47. DOI: 10.1007/978-0-387-33504-9_4. View

3.
Garcia R, Stipanuk M . The splanchnic organs, liver and kidney have unique roles in the metabolism of sulfur amino acids and their metabolites in rats. J Nutr. 1992; 122(8):1693-701. DOI: 10.1093/jn/122.8.1693. View

4.
Rupar C, Gillett J, Gordon B, Ramsay D, Johnson J, Garrett R . Isolated sulfite oxidase deficiency. Neuropediatrics. 1996; 27(6):299-304. DOI: 10.1055/s-2007-973798. View

5.
Prudova A, Bauman Z, Braun A, Vitvitsky V, Lu S, Banerjee R . S-adenosylmethionine stabilizes cystathionine beta-synthase and modulates redox capacity. Proc Natl Acad Sci U S A. 2006; 103(17):6489-94. PMC: 1458911. DOI: 10.1073/pnas.0509531103. View