
methyltransferase
Sign in to saveAlso known as methyltransferases
thumb|300x300px|SET7/9, a representative histone methyltransferase with SAM (blue) and peptide undergoing methylation (black). Rendered from PDB: 4J83. thumb|320px|The SN2-like methyl transfer reaction. Only the SAM cofactor and cytosine base are shown for simplicity.
Research
84,376 papers- Methyltransferase DNMT3B in leukemia.Leukemia & lymphoma · 2020
- RNA methyltransferase METTL16: Targets and function.Wiley interdisciplinary reviews. RNA · 2022
- Phosphatidylethanolamine N-methyltransferase from liver.Biochimica et biophysica acta · 1997
- Recent advances in methyltransferase biocatalysis.Current opinion in chemical biology · 2017
- Insights into S-adenosyl-l-methionine (SAM)-dependent methyltransferase related diseases and genetic polymorphisms.Mutation research. Reviews in mutation research · 2021
via PubMed
Wikidata facts
Show 2 more facts
- Commons category
- EC 2.1.1 Methyltransferases
- EC enzyme number
- 2.1.1.-
Sources (2)
via Wikidata · CC0
~16 min read
Article
16 sectionsContents
- Function
- Genetics
- Protein regulation
- Types
- Histone methyltransferases
- N-terminal methyltransferases
- DNA/RNA methyltransferases
- Natural product methyltransferases
- Non-SAM dependent methyltransferases
- Radical SAM methyltransferases
- Clinical significance
- Applications in drug discovery and development
- Applications in cancer treatment
- Examples
- References
- Further reading
thumb|300x300px|SET7/9, a representative histone methyltransferase with SAM (blue) and peptide undergoing methylation (black). Rendered from PDB: 4J83. thumb|320px|The SN2-like methyl transfer reaction. Only the SAM cofactor and cytosine base are shown for simplicity.
Methyltransferases are a large group of enzymes that all methylate their substrates but can be split into several subclasses based on their structural features. The most common class of methyltransferases is class I, all of which contain a Rossmann fold for binding S-Adenosyl methionine (SAM). Class II methyltransferases contain a SET domain, which are exemplified by SET domain histone methyltransferases, and class III methyltransferases, which are membrane associated. Methyltransferases can also be grouped as different types utilizing different substrates in methyl transfer reactions. These types include protein methyltransferases, DNA/RNA methyltransferases, natural product methyltransferases, and non-SAM dependent methyltransferases. SAM is the classical methyl donor for methyltransferases, however, examples of other methyl donors are seen in nature. The general mechanism for methyl transfer is a SN2-like nucleophilic attack where the methionine sulfur serves as the leaving group and the methyl group attached to it acts as the electrophile that transfers the methyl group to the enzyme substrate. SAM is converted to S-Adenosyl homocysteine (SAH) during this process. The breaking of the SAM-methyl bond and the formation of the substrate-methyl bond happen nearly simultaneously. These enzymatic reactions are found in many pathways and are implicated in genetic diseases, cancer, and metabolic diseases. Another type of methyl transfer is the radical S-Adenosyl methionine (SAM) which is the methylation of unactivated carbon atoms in primary metabolites, proteins, lipids, and RNA.