One-Carbon Pathways
Cobalamin is studied as a cofactor in methionine synthase activity and methylation-cycle research.
B12 is a cobalamin-family research compound studied for its role as a cofactor in one-carbon metabolism, methylation biology, and cellular energy pathways. Laboratory research commonly examines cobalamin-dependent enzymes, methylmalonyl-CoA metabolism, and homocysteine-related biochemical systems.
B12 is a cobalamin-family research compound studied for its role as a cofactor in one-carbon metabolism, methylation biology, and cellular energy pathways. Laboratory research commonly examines cobalamin-dependent enzymes, methylmalonyl-CoA metabolism, and homocysteine-related biochemical systems.
B12 (Cobalamin) is supplied strictly as a reference material for in vitro and preclinical investigation. All characterization data described here is drawn from peer-reviewed literature and laboratory analysis; nothing herein constitutes a claim of clinical effect in humans.
The following domains summarize directions explored across published studies and laboratory models. Each reflects observations reported in rodent models, in vitro systems, or the peer-reviewed record.
Cobalamin is studied as a cofactor in methionine synthase activity and methylation-cycle research.
Research examines B12-dependent methylmalonyl-CoA mutase and downstream mitochondrial metabolism markers.
Cobalamin biology is investigated in models of nerve maintenance, myelin-associated pathways, and cellular methylation.
B12 serves as a reference compound in biochemical assays evaluating cobalamin-dependent enzyme activity.
Mechanistic steps below are hypothesized from in vitro assays and animal-model data reported in the literature. They describe biochemical interactions observed under controlled experimental conditions.
Methylcobalamin supports transfer of methyl groups in methionine synthase reactions central to one-carbon metabolism.
Adenosylcobalamin participates in conversion of methylmalonyl-CoA to succinyl-CoA within mitochondrial pathways.
Cobalamin-dependent reactions influence homocysteine remethylation and related methyl donor balance.
Through succinyl-CoA formation and methylation pathways, B12 research intersects with mitochondrial and cellular energy biology.
| Amino Acid Sequence | N/A |
|---|---|
| Molecular Weight | 1,355.4 g/mol |
| Molecular Formula | C63H88CoN14O14P |
| CAS Number | 68-19-9 |
| Storage | 2-8°C protected from light; -20°C for long-term storage |
The following peer-reviewed references informed the research summaries on this page. Citations are provided for scientific context only.
This product is intended strictly for laboratory research purposes only. It is not a drug, food, cosmetic, or dietary supplement and is not intended to diagnose, treat, cure, or prevent any disease. It is not for human or animal consumption. All information presented is derived from published scientific literature and is provided for educational reference only. By purchasing, the buyer affirms they are a qualified researcher or institution and assume full responsibility for the safe and lawful handling of this material.