Methionine Cycle / Transmethylation (SAM Cycle, homocysteine)
- Compartment
- Cytosol
- Main tissue
- Liver (mainly)
- Rate-limiting
- Cystathionine beta-synthase (CBS)
- Steps
- 7
Reaction steps
In source order, 7 total
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1
L-methionine + ATP → S-adenosylmethionine (SAM) + Pᵢ + PPᵢ
› Notes
Methionine adenosyltransferase (MAT; MAT I/III in adult liver, MAT II extrahepatically) transfers the adenosyl moiety of ATP to methionine. ATP is cleaved to tripolyphosphate equivalents (Pᵢ + PPᵢ, with PPᵢ hydrolysis driving the reaction); this is an essentially irreversible activation step that consumes three high-energy phosphate bonds.
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2
SAM + methyl acceptor → S-adenosylhomocysteine (SAH) + methylated acceptor
› Notes
A large family of SAM-dependent methyltransferases transfers the activated methyl group to substrates such as DNA, RNA, norepinephrine, phosphatidylethanolamine, guanidinoacetate, and catechols. No additional ATP is used in the transfer, but SAM cleavage makes methyl transfer strongly favorable; this is the defining transmethylation step.
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3
SAH + H₂O ⇌ homocysteine + adenosine
› Notes
S-adenosylhomocysteine hydrolase (AHCY) catalyzes a reversible reaction whose in vivo direction is driven toward hydrolysis by rapid removal of homocysteine and adenosine. SAH is a potent competitive inhibitor of many methyltransferases, so its clearance is necessary to preserve methylation potential.
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4
Homocysteine + 5-methyl-THF → methionine + THF
› Notes
Methionine synthase (MTR) requires methylcobalamin (vitamin B12) and links the methionine cycle to the folate cycle. Reductive reactivation of oxidized cobalamin requires methionine synthase reductase, NADPH, FAD, FMN, and SAM; remethylation is the principal methionine-conserving route in most tissues.
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5
Homocysteine + betaine → methionine + dimethylglycine
› Notes
Betaine–homocysteine methyltransferase (BHMT) uses betaine (trimethylglycine) as methyl donor in liver and kidney. This folate- and B12-independent alternative remethylation pathway is especially important when choline/betaine supply is adequate.
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6
Homocysteine + L-serine → cystathionine + H₂O
Cystathionine beta-synthase (CBS) 4.2.1.22 ST-0175 Irreversible rate-limiting PLP (B6) Heme/cytochrome H2O› Notes
Cystathionine β-synthase (CBS) uses PLP (vitamin B6) and a heme regulatory domain to catalyze the first transsulfuration step. It is the committed, essentially irreversible, rate-controlling step of transsulfuration and is activated by SAM when methionine/SAM abundance is high.
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7
Cystathionine + H₂O → L-cysteine + α-ketobutyrate + NH₄⁺
› Notes
Cystathionine γ-lyase (CGL/CSE) is PLP-dependent and completes transsulfuration. α-Ketobutyrate is oxidatively decarboxylated to propionyl-CoA and can yield succinyl-CoA through the biotin- and cobalamin-dependent propionate pathway.
Showing all 7 steps.
Regulation
What speeds each enzyme up and what slows it down
Methionine adenosyltransferase (MAT)
Methionine availability; demand for SAM
Product/SAM accumulation; oxidative or liver injury can impair isoenzyme activity
Insulin, glucagon, and nutritional state alter hepatic MAT expression indirectly
Cystathionine β-synthase (CBS)
SAM allosterically activates; PLP sufficiency
PLP deficiency; pathogenic CBS variants; low substrate
Liver expression responds to dietary methionine/protein and catabolic state; no dominant rapid systemic hormone
Methionine synthase
5-methyl-THF, homocysteine, and functional B12 availability
B12 deficiency/inactivation; nitrous oxide oxidizes cobalamin and inhibits function
Mainly controlled by vitamin status and substrate flux
Betaine–homocysteine methyltransferase
Betaine/choline availability; homocysteine
Low betaine availability
Dietary choline and hepatic nutritional state dominate regulation
Overview
The methionine cycle activates methionine to S-adenosylmethionine (SAM), the universal major methyl donor for DNA, RNA, protein, phospholipid, neurotransmitter, and small-molecule methylation. After methyl donation, SAM becomes S-adenosylhomocysteine (SAH), which is hydrolyzed to homocysteine. Homocysteine is either remethylated to methionine or committed to transsulfuration, producing cysteine and ultimately glutathione and sulfate.
Cellular location
Most methionine-cycle and transmethylation reactions occur in the cytosol of all cells, with especially high capacity in liver. The liver coordinates methionine conservation, SAM disposal, and transsulfuration; kidney also uses betaine-dependent remethylation. Mitochondria contain important one-carbon and SAM-dependent reactions, but the canonical methionine-cycle enzymes are largely cytosolic.
Net energetics
Formation of one SAM from methionine consumes 1 ATP equivalent cleaved to Pᵢ + PPᵢ, i.e., 3 high-energy phosphate bonds after pyrophosphate hydrolysis. Each methyl-transfer reaction consumes the activated methyl potential of one SAM but does not directly hydrolyze another ATP. Remethylation via methionine synthase uses a methyl group from 5-methyl-THF, whose formation requires NADPH through MTHFR; transsulfuration itself has no direct ATP requirement but irreversibly diverts methionine sulfur toward cysteine.
Clinical significance
SAM availability and the SAM:SAH ratio determine cellular methylation potential, affecting epigenetic regulation, neurotransmitter metabolism, phosphatidylcholine synthesis, and creatine synthesis. CBS deficiency causes classical homocystinuria, typically with markedly elevated homocysteine, thrombosis, ectopia lentis, skeletal abnormalities, and variable neurodevelopmental impairment; some variants respond to pyridoxine. Defects in remethylation (including B12, MTR, MTRR, or severe MTHFR deficiency) cause hyperhomocysteinemia with low or inappropriately normal methionine and may present with neurologic disease and megaloblastic anemia when B12 metabolism is involved.
Recent literature
Live Europe PMC search
Europe PMC · from cache · sorted by publication date
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1
Methionine Synthase Interacts With the Methionine Adenosyl-Transferase MATα2 and the DNA Methyltransferase DNMT3b in the Nucleus.
Jeandel M, Alberto JM, Baspinar O, Robert A, Dreumont N, Alsahly Z, Meyre D, Guéant JL, Coelho D. · 2026-07-01
open access unreviewed -
2
High paternal homocysteine causes ventricular septal defects in mouse offspring.
Liu L, Zhang X, Geng HR, Qiao YN, Gui YH, Zhao JY. · 2024-03-07
cited 1× open access unreviewed -
3
Toxicodynamics of Lead, Cadmium, Mercury and Arsenic- induced kidney toxicity and treatment strategy: A mini review.
Rana MN, Tangpong J, Rahman MM. · 2018-05-26
cited 152× open access unreviewed -
4
Autism and Folate-dependent One-carbon Metabolism: Serendipity and Critical Branch-point Decisions in Science.
James SJ. · 2013-11-01
cited 16× open access unreviewed -
5
Metabolic imbalance associated with methylation dysregulation and oxidative damage in children with autism.
Melnyk S, Fuchs GJ, Schulz E, Lopez M, Kahler SG, Fussell JJ, Bellando J, Pavliv O, Rose S, Seidel L, Gaylor … · 2012-03-01
cited 176× unreviewed -
6
Abnormal transmethylation/transsulfuration metabolism and DNA hypomethylation among parents of children with autism.
James SJ, Melnyk S, Jernigan S, Hubanks A, Rose S, Gaylor DW. · 2008-05-30
cited 59× unreviewed -
7
Metabolic endophenotype and related genotypes are associated with oxidative stress in children with autism.
James SJ, Melnyk S, Jernigan S, Cleves MA, Halsted CH, Wong DH, Cutler P, Bock K, Boris M, Bradstreet JJ, Bak… · 2006-12-01
cited 381× unreviewed
External claims. These come from an index outside this database and are not checked against it. Treat them as leads.