4amb Citations

Crystal structure of the glycosyltransferase SnogD from the biosynthetic pathway of nogalamycin in Streptomyces nogalater.

FEBS J 279 3251-63 (2012)
Related entries: 4amg, 4an4

Cited: 11 times
EuropePMC logo PMID: 22804797

Abstract

The glycosyltransferase SnogD from Streptomyces nogalater transfers a nogalamine moiety to the metabolic intermediate 3',4'-demethoxynogalose-1-hydroxynogalamycinone during the final steps of biosynthesis of the aromatic polyketide nogalamycin. The crystal structure of recombinant SnogD, as an apo-enzyme and with a bound nucleotide, 2-deoxyuridine-5'-diphosphate, was determined to 2.6 Å resolution. Reductive methylation of SnogD was crucial for reproducible preparation of diffraction quality crystals due to creation of an additional intermolecular salt bridge between methylated lysine residue Lys384 and Glu374* from an adjacent molecule in the crystal lattice. SnogD is a dimer both in solution and in the crystal, and the enzyme subunit displays a fold characteristic of the GT-B family of glycosyltransferases. Binding of the nucleotide is associated with rearrangement of two active-site loops. Site-directed mutagenesis shows that two active-site histidine residues, His25 and His301, are critical for the glycosyltransferase activities of SnogD both in vivo and in vitro. The crystal structures and the functional data are consistent with a role for His301 in binding of the diphosphate group of the sugar donor substrate, and a function of His25 as a catalytic base in the glycosyl transfer reaction.

Articles - 4amb mentioned but not cited (1)

  1. Bifunctional Opioid/Melanocortin Peptidomimetics for Use in Neuropathic Pain: Variation in the Type and Length of the Linker Connecting the Two Pharmacophores. Witkowska E, Godlewska M, Osiejuk J, Gątarz S, Wileńska B, Kosińska K, Starnowska-Sokół J, Piotrowska A, Lipiński PFJ, Matalińska J, Dyniewicz J, Halik PK, Gniazdowska E, Przewlocka B, Misicka A. Int J Mol Sci 23 674 (2022)


Reviews citing this publication (2)

  1. Glycosyltransferases: mechanisms and applications in natural product development. Liang DM, Liu JH, Wu H, Wang BB, Zhu HJ, Qiao JJ. Chem Soc Rev 44 8350-8374 (2015)
  2. Advances in understanding glycosyltransferases from a structural perspective. Gloster TM. Curr Opin Struct Biol 28 131-141 (2014)

Articles citing this publication (8)

  1. Coculture of Marine Invertebrate-Associated Bacteria and Interdisciplinary Technologies Enable Biosynthesis and Discovery of a New Antibiotic, Keyicin. Adnani N, Chevrette MG, Adibhatla SN, Zhang F, Yu Q, Braun DR, Nelson J, Simpkins SW, McDonald BR, Myers CL, Piotrowski JS, Thompson CJ, Currie CR, Li L, Rajski SR, Bugni TS. ACS Chem Biol 12 3093-3102 (2017)
  2. Identification of the incednine biosynthetic gene cluster: characterization of novel β-glutamate-β-decarboxylase IdnL3. Takaishi M, Kudo F, Eguchi T. J Antibiot (Tokyo) 66 691-699 (2013)
  3. Structural studies of the spinosyn forosaminyltransferase, SpnP. Isiorho EA, Jeon BS, Kim NH, Liu HW, Keatinge-Clay AT. Biochemistry 53 4292-4301 (2014)
  4. A conserved domain is crucial for acceptor substrate binding in a family of glucosyltransferases. Zhu F, Zhang H, Wu H. J Bacteriol 197 510-517 (2015)
  5. Engineered jadomycin analogues with altered sugar moieties revealing JadS as a substrate flexible O-glycosyltransferase. Li L, Pan G, Zhu X, Fan K, Gao W, Ai G, Ren J, Shi M, Olano C, Salas JA, Yang K. Appl Microbiol Biotechnol 101 5291-5300 (2017)
  6. Letter Enzymatic Synthesis of the C-Glycosidic Moiety of Nogalamycin R. Siitonen V, Nji Wandi B, Törmänen AP, Metsä-Ketelä M. ACS Chem Biol 13 2433-2437 (2018)
  7. Pathway Engineering of Anthracyclines: Blazing Trails in Natural Product Glycodiversification. Brown KV, Wandi BN, Metsä-Ketelä M, Nybo SE. J Org Chem 85 12012-12023 (2020)
  8. Resistance and phylogeny guided discovery reveals structural novelty of tetracycline antibiotics. Li LY, Hu YL, Sun JL, Yu LB, Shi J, Wang ZR, Guo ZK, Zhang B, Guo WJ, Tan RX, Ge HM. Chem Sci 13 12892-12898 (2022)