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Pathway Description
Methionine Metabolism
Caenorhabditis elegans
Category:
Metabolite Pathway
Sub-Category:
Metabolic
Created: 2018-08-10
Last Updated: 2019-09-15
Methionine metabolism is a process that is necessary for humans. Methionine metabolism in mammals happens within two pathways, a methionine cycle and a transsulfuration sequence. These pathways have three common reactions with both pathways including the transformation of methionine to S-adenosylmethionine (SAM), the use of SAM in many different transmethylation reactions resulting in a methylated product plus S-adenosylhomocysteine, and the conversion of S-adenosylhomocysteine to produce the compounds homocysteine and adenosine. The reactions mentioned above not only produce cysteine, they also create a-ketobutyrate. This compound is then converted to succinyl-CoA through a three step process after being converted to propionyl-CoA. If the amino acids cysteine and methionine are available in enough quantity, the pathway will accumulate SAM and this will in turn encourage the production of cysteine and a-ketobutyrate, which are both glucogenic, through cystathionine synthase. When there is a lack of methionine, there is a decrease in the production of SAM, which limits cystathionine synthase activity.
References
Methionine Metabolism References
Vatcher GP, Thacker CM, Kaletta T, Schnabel H, Schnabel R, Baillie DL: Serine hydroxymethyltransferase is maternally essential in Caenorhabditis elegans. J Biol Chem. 1998 Mar 13;273(11):6066-73. doi: 10.1074/jbc.273.11.6066.
Pubmed: 9497323
Genome sequence of the nematode C. elegans: a platform for investigating biology. Science. 1998 Dec 11;282(5396):2012-8. doi: 10.1126/science.282.5396.2012.
Pubmed: 9851916
Budde MW, Roth MB: The response of Caenorhabditis elegans to hydrogen sulfide and hydrogen cyanide. Genetics. 2011 Oct;189(2):521-32. doi: 10.1534/genetics.111.129841. Epub 2011 Aug 11.
Pubmed: 21840852
Ma DK, Vozdek R, Bhatla N, Horvitz HR: CYSL-1 interacts with the O2-sensing hydroxylase EGL-9 to promote H2S-modulated hypoxia-induced behavioral plasticity in C. elegans. Neuron. 2012 Mar 8;73(5):925-40. doi: 10.1016/j.neuron.2011.12.037.
Pubmed: 22405203
Da'dara AA, Walter RD: Molecular and biochemical characterization of S-adenosylmethionine decarboxylase from the free-living nematode Caenorhabditis elegans. Biochem J. 1998 Dec 15;336 ( Pt 3):545-50. doi: 10.1042/bj3360545.
Pubmed: 9841864
Heinick A, Urban K, Roth S, Spies D, Nunes F, Phanstiel O 4th, Liebau E, Luersen K: Caenorhabditis elegans P5B-type ATPase CATP-5 operates in polyamine transport and is crucial for norspermidine-mediated suppression of RNA interference. FASEB J. 2010 Jan;24(1):206-17. doi: 10.1096/fj.09-135889. Epub 2009 Sep 17.
Pubmed: 19762559
Dufe VT, Luersen K, Eschbach ML, Haider N, Karlberg T, Walter RD, Al-Karadaghi S: Cloning, expression, characterisation and three-dimensional structure determination of Caenorhabditis elegans spermidine synthase. FEBS Lett. 2005 Nov 7;579(27):6037-43. doi: 10.1016/j.febslet.2005.09.050. Epub 2005 Oct 5.
Pubmed: 16226262
Prasad SS, Starr TV, Rose AM: Molecular characterization in the dpy-14 region identifies the adenosylhomocysteine hydrolase gene in Caenorhabditis elegans. Genome. 1993 Feb;36(1):57-65.
Pubmed: 8458573
Wilson R, Ainscough R, Anderson K, Baynes C, Berks M, Bonfield J, Burton J, Connell M, Copsey T, Cooper J, et al.: 2.2 Mb of contiguous nucleotide sequence from chromosome III of C. elegans. Nature. 1994 Mar 3;368(6466):32-8. doi: 10.1038/368032a0.
Pubmed: 7906398
This pathway was propagated using PathWhiz -
Pon, A. et al. Pathways with PathWhiz (2015) Nucleic Acids Res. 43(Web Server issue): W552–W559.
Propagated from SMP0000033
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