Literature DB >> 10200167

DnrD cyclase involved in the biosynthesis of doxorubicin: purification and characterization of the recombinant enzyme.

S G Kendrew1, K Katayama, E Deutsch, K Madduri, C R Hutchinson.   

Abstract

Mutations in the Streptomyces peucetius dnrD gene block the ring cyclization leading from aklanonic acid methyl ester (AAME) to aklaviketone (AK), an intermediate in the biosynthetic pathway to daunorubicin (DNR) and doxorubicin. To investigate the role of DnrD in this transformation, its gene was overexpressed in Escherichia coli and the DnrD protein was purified to homogeneity and characterized. The enzyme was shown to catalyze the conversion of AAME to AK presumably via an intramolecular aldol condensation mechanism. In contrast to the analogous intramolecular aldol cyclization catalyzed by the TcmI protein from the tetracenomycin (TCM) C pathway in Streptomyces glaucescens, where a tricyclic anthraquinol carboxylic acid is converted to its fully aromatic tetracyclic form, the conversion catalyzed by DnrD occurs after anthraquinone formation and requires activation of a carboxylic acid group by esterification of aklanonic acid, the AAME precursor. Also, the cyclization is not coupled with a subsequent dehydration step that would result in an aromatic ring. As the substrates for the DnrD and TcmI enzymes are among the earliest isolable intermediates of aromatic polyketide biosynthesis, an understanding of the mechanism and active site topology of these proteins will allow one to determine the substrate and mechanistic parameters that are important for aromatic ring formation. In the future, these parameters may be able to be applied to some of the earlier polyketide cyclization processes that currently are difficult to study in vitro.

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Year:  1999        PMID: 10200167     DOI: 10.1021/bi9827924

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  7 in total

1.  Isolation, characterization, and heterologous expression of the biosynthesis gene cluster for the antitumor anthracycline steffimycin.

Authors:  Sonia Gullón; Carlos Olano; Mohamed S Abdelfattah; Alfredo F Braña; Jürgen Rohr; Carmen Méndez; José A Salas
Journal:  Appl Environ Microbiol       Date:  2006-06       Impact factor: 4.792

Review 2.  Cyclization of aromatic polyketides from bacteria and fungi.

Authors:  Hui Zhou; Yanran Li; Yi Tang
Journal:  Nat Prod Rep       Date:  2010-03-31       Impact factor: 13.423

3.  Engineered biosynthesis of aklanonic acid analogues.

Authors:  Taek Soon Lee; Chaitan Khosla; Yi Tang
Journal:  J Am Chem Soc       Date:  2005-09-07       Impact factor: 15.419

4.  Structure of the polyketide cyclase SnoaL reveals a novel mechanism for enzymatic aldol condensation.

Authors:  Azmiri Sultana; Pauli Kallio; Anna Jansson; Ji-Shu Wang; Jarmo Niemi; Pekka Mäntsälä; Gunter Schneider
Journal:  EMBO J       Date:  2004-04-08       Impact factor: 11.598

5.  Structure of a conserved hypothetical protein, TTHA0849 from Thermus thermophilus HB8, at 2.4 A resolution: a putative member of the StAR-related lipid-transfer (START) domain superfamily.

Authors:  Makoto Nakabayashi; Naoki Shibata; Hirofumi Komori; Yasufumi Ueda; Hitoshi Iino; Akio Ebihara; Seiki Kuramitsu; Yoshiki Higuchi
Journal:  Acta Crystallogr Sect F Struct Biol Cryst Commun       Date:  2005-11-05

6.  Insights into Complex Oxidation during BE-7585A Biosynthesis: Structural Determination and Analysis of the Polyketide Monooxygenase BexE.

Authors:  David R Jackson; Xia Yu; Guojung Wang; Avinash B Patel; Jordi Calveras; Jesus F Barajas; Eita Sasaki; Mikko Metsä-Ketelä; Hung-Wen Liu; Jürgen Rohr; Shiou-Chuan Tsai
Journal:  ACS Chem Biol       Date:  2016-02-10       Impact factor: 5.100

Review 7.  Biosynthesis of oxygen and nitrogen-containing heterocycles in polyketides.

Authors:  Franziska Hemmerling; Frank Hahn
Journal:  Beilstein J Org Chem       Date:  2016-07-20       Impact factor: 2.883

  7 in total

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