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Mechanistic Diversity of Radical S-Adenosylmethionine (SAM)-dependent Methylation

2014/12/05 by Matthew Bauerle, Erica L. Schwalm, Squire J. Booker · 1 citation
Energy · Chemical Engineering · Biochemistry, Genetics and Molecular Biology · #Metalloenzymes and iron-sulfur proteins #Ammonia Synthesis and Nitrogen Reduction #RNA modifications and cancer

paper · pdf · doi:10.1074/jbc.r114.607044

openalex publication_date 2014/12/05 · openalex created_date 2025/10/10 · openalex updated_date 2026/08/01

Abstract

Radical S-adenosylmethionine (SAM) enzymes use the oxidizing power of a 5'-deoxyadenosyl 5'-radical to initiate an amazing array of transformations, usually through the abstraction of a target substrate hydrogen atom. A common reaction of radical SAM (RS) enzymes is the methylation of unactivated carbon or phosphorous atoms found in numerous primary and secondary metabolites, as well as in proteins, sugars, lipids, and RNA. However, neither the chemical mechanisms by which these unactivated atoms obtain methyl groups nor the actual methyl donors are conserved. In fact, RS methylases have been grouped into three classes based on protein architecture, cofactor requirement, and predicted mechanism of catalysis. Class A methylases use two cysteine residues to methylate sp(2)-hybridized carbon centers. Class B methylases require a cobalamin cofactor to methylate both sp(2)-hybridized and sp(3)-hybridized carbon centers as well as phosphinate phosphorous atoms. Class C methylases share significant sequence homology with the RS enzyme, HemN, and may bind two SAM molecules simultaneously to methylate sp(2)-hybridized carbon centers. Lastly, we describe a new class of recently discovered RS methylases. These Class D methylases, unlike Class A, B, and C enzymes, which use SAM as the source of the donated methyl carbon, are proposed to methylate sp(2)-hybridized carbon centers using methylenetetrahydrofolate as the source of the appended methyl carbon.

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