3ssm Citations

A new structural form in the SAM/metal-dependent o‑methyltransferase family: MycE from the mycinamicin biosynthetic pathway.

J Mol Biol 413 438-50 (2011)
Related entries: 3ssn, 3sso

Cited: 13 times
EuropePMC logo PMID: 21884704

Abstract

O-linked methylation of sugar substituents is a common modification in the biosynthesis of many natural products and is catalyzed by multiple families of S-adenosyl-L-methionine (SAM or AdoMet)-dependent methyltransferases (MTs). Mycinamicins, potent antibiotics from Micromonospora griseorubida, can be methylated at two positions on a 6-deoxyallose substituent. The first methylation is catalyzed by MycE, a SAM- and metal-dependent MT. Crystal structures were determined for MycE bound to the product S-adenosyl-L-homocysteine (AdoHcy) and magnesium, both with and without the natural substrate mycinamicin VI. This represents the first structure of a natural product sugar MT in complex with its natural substrate. MycE is a tetramer of a two-domain polypeptide, comprising a C-terminal catalytic MT domain and an N-terminal auxiliary domain, which is important for quaternary assembly and for substrate binding. The symmetric MycE tetramer has a novel MT organization in which each of the four active sites is formed at the junction of three monomers within the tetramer. The active-site structure supports a mechanism in which a conserved histidine acts as a general base, and the metal ion helps to position the methyl acceptor and to stabilize a hydroxylate intermediate. A conserved tyrosine is suggested to support activity through interactions with the transferred methyl group from the SAM methyl donor. The structure of the free enzyme reveals a dramatic order-disorder transition in the active site relative to the S-adenosyl-L-homocysteine complexes, suggesting a mechanism for product/substrate exchange through concerted movement of five loops and the polypeptide C-terminus.

Articles - 3ssm mentioned but not cited (2)

  1. Structure-function-guided exploration of the antimicrobial peptide polybia-CP identifies activity determinants and generates synthetic therapeutic candidates. Torres MDT, Pedron CN, Higashikuni Y, Kramer RM, Cardoso MH, Oshiro KGN, Franco OL, Silva Junior PI, Silva FD, Oliveira Junior VX, Lu TK, de la Fuente-Nunez C. Commun Biol 1 221 (2018)
  2. A new structural form in the SAM/metal-dependent o‑methyltransferase family: MycE from the mycinamicin biosynthetic pathway. Akey DL, Li S, Konwerski JR, Confer LA, Bernard SM, Anzai Y, Kato F, Sherman DH, Smith JL. J Mol Biol 413 438-450 (2011)


Reviews citing this publication (3)

  1. Architectures, mechanisms and molecular evolution of natural product methyltransferases. Liscombe DK, Louie GV, Noel JP. Nat Prod Rep 29 1238-1250 (2012)
  2. The structural biology of enzymes involved in natural product glycosylation. Singh S, Phillips GN, Thorson JS. Nat Prod Rep 29 1201-1237 (2012)
  3. Methyltransferases: Functions and Applications. Abdelraheem E, Thair B, Varela RF, Jockmann E, Popadić D, Hailes HC, Ward JM, Iribarren AM, Lewkowicz ES, Andexer JN, Hagedoorn PL, Hanefeld U. Chembiochem 23 e202200212 (2022)

Articles citing this publication (8)

  1. Structure and mechanism of a nonhaem-iron SAM-dependent C-methyltransferase and its engineering to a hydratase and an O-methyltransferase. Zou XW, Liu YC, Hsu NS, Huang CJ, Lyu SY, Chan HC, Chang CY, Yeh HW, Lin KH, Wu CJ, Tsai MD, Li TL. Acta Crystallogr D Biol Crystallogr 70 1549-1560 (2014)
  2. Enzymatic characterization of three human RNA adenosine methyltransferases reveals diverse substrate affinities and reaction optima. Yu D, Kaur G, Blumenthal RM, Zhang X, Cheng X. J Biol Chem 296 100270 (2021)
  3. Chlorovirus PBCV-1 protein A064R has three of the transferase activities necessary to synthesize its capsid protein N-linked glycans. Speciale I, Laugieri ME, Noel E, Lin S, Lowary TL, Molinaro A, Duncan GA, Agarkova IV, Garozzo D, Tonetti MG, Van Etten JL, De Castro C. Proc Natl Acad Sci U S A 117 28735-28742 (2020)
  4. Structural and functional characterization of CalS11, a TDP-rhamnose 3'-O-methyltransferase involved in calicheamicin biosynthesis. Singh S, Chang A, Helmich KE, Bingman CA, Wrobel RL, Beebe ET, Makino S, Aceti DJ, Dyer K, Hura GL, Sunkara M, Morris AJ, Phillips GN, Thorson JS. ACS Chem Biol 8 1632-1639 (2013)
  5. Structural basis of substrate specificity and regiochemistry in the MycF/TylF family of sugar O-methyltransferases. Bernard SM, Akey DL, Tripathi A, Park SR, Konwerski JR, Anzai Y, Li S, Kato F, Sherman DH, Smith JL. ACS Chem Biol 10 1340-1351 (2015)
  6. Structure and mechanism of an antibiotics-synthesizing 3-hydroxykynurenine C-methyltransferase. Chen SC, Huang CH, Lai SJ, Liu JS, Fu PK, Tseng ST, Yang CS, Lai MC, Ko TP, Chen Y. Sci Rep 5 10100 (2015)
  7. Functional Characterization of a Regiospecific Sugar-O-Methyltransferase from Nocardia. Poudel PB, Pandey RP, Dhakal D, Kim TS, Nguyen TTH, Jung HJ, Shin HJ, Timalsina B, Sohng JK. Appl Environ Microbiol 88 e0075422 (2022)
  8. Giant viruses of the Megavirinae subfamily possess biosynthetic pathways to produce rare bacterial-like sugars in a clade-specific manner. Notaro A, Poirot O, Garcin ED, Nin S, Molinaro A, Tonetti M, De Castro C, Abergel C. Microlife 3 uqac002 (2022)