Literature DB >> 22158714

Resolving phenylalanine metabolism sheds light on natural synthesis of penicillin G in Penicillium chrysogenum.

Tânia Veiga1, Daniel Solis-Escalante, Gabriele Romagnoli, Angela ten Pierick, Mark Hanemaaijer, Amit T Deshmukh, Amit Deshmuhk, Aljoscha Wahl, Jack T Pronk, Jean-Marc Daran.   

Abstract

The industrial production of penicillin G by Penicillium chrysogenum requires the supplementation of the growth medium with the side chain precursor phenylacetate. The growth of P. chrysogenum with phenylalanine as the sole nitrogen source resulted in the extracellular production of phenylacetate and penicillin G. To analyze this natural pathway for penicillin G production, chemostat cultures were switched to [U-(13)C]phenylalanine as the nitrogen source. The quantification and modeling of the dynamics of labeled metabolites indicated that phenylalanine was (i) incorporated in nascent protein, (ii) transaminated to phenylpyruvate and further converted by oxidation or by decarboxylation, and (iii) hydroxylated to tyrosine and subsequently metabolized via the homogentisate pathway. The involvement of the homogentisate pathway was supported by the comparative transcriptome analysis of P. chrysogenum cultures grown with phenylalanine and with (NH(4))(2)SO(4) as the nitrogen source. This transcriptome analysis also enabled the identification of two putative 2-oxo acid decarboxylase genes (Pc13g9300 and Pc18g01490). cDNAs of both genes were cloned and expressed in the 2-oxo-acid-decarboxylase-free Saccharomyces cerevisiae strain CEN.PK711-7C (pdc1 pdc5 pdc6Δ aro10Δ thi3Δ). The introduction of Pc13g09300 restored the growth of this S. cerevisiae mutant on glucose and phenylalanine, thereby demonstrating that Pc13g09300 encodes a dual-substrate pyruvate and phenylpyruvate decarboxylase, which plays a key role in an Ehrlich-type pathway for the production of phenylacetate in P. chrysogenum. These results provide a basis for the metabolic engineering of P. chrysogenum for the production of the penicillin G side chain precursor phenylacetate.

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Year:  2011        PMID: 22158714      PMCID: PMC3272894          DOI: 10.1128/EC.05285-11

Source DB:  PubMed          Journal:  Eukaryot Cell        ISSN: 1535-9786


  71 in total

1.  Intracellular metabolite determination in the presence of extracellular abundance: Application to the penicillin biosynthesis pathway in Penicillium chrysogenum.

Authors:  Rutger D Douma; Lodewijk P de Jonge; Caspar T H Jonker; Reza M Seifar; Joseph J Heijnen; Walter M van Gulik
Journal:  Biotechnol Bioeng       Date:  2010-09-01       Impact factor: 4.530

2.  Computational tools for isotopically instationary 13C labeling experiments under metabolic steady state conditions.

Authors:  Katharina Nöh; Aljoscha Wahl; Wolfgang Wiechert
Journal:  Metab Eng       Date:  2006-06-12       Impact factor: 9.783

Review 3.  Genomics reveals traces of fungal phenylpropanoid-flavonoid metabolic pathway in the f ilamentous fungus Aspergillus oryzae.

Authors:  Praveen Rao Juvvadi; Yasuyo Seshime; Katsuhiko Kitamoto
Journal:  J Microbiol       Date:  2005-12       Impact factor: 3.422

4.  Genomic evidences for the existence of a phenylpropanoid metabolic pathway in Aspergillus oryzae.

Authors:  Yasuyo Seshime; Praveen Rao Juvvadi; Isao Fujii; Katsuhiko Kitamoto
Journal:  Biochem Biophys Res Commun       Date:  2005-09-09       Impact factor: 3.575

5.  Chemically defined media for antibiotic production.

Authors:  D Perlman
Journal:  Ann N Y Acad Sci       Date:  1966-10-07       Impact factor: 5.691

6.  Degradion of phenylalanine and tyrosine by Basidiomycetes.

Authors:  K Moore; P V Rao; G H Towers
Journal:  Life Sci       Date:  1967-12-15       Impact factor: 5.037

7.  Degradation of aromatic amino acids by fungi. I. Fate of L-phenylalanine in Schizophyllum commune.

Authors:  K Moore; G H Towers
Journal:  Can J Biochem       Date:  1967-11

8.  The homogentisate pathway: a central catabolic pathway involved in the degradation of L-phenylalanine, L-tyrosine, and 3-hydroxyphenylacetate in Pseudomonas putida.

Authors:  Elsa Arias-Barrau; Elías R Olivera; José M Luengo; Cristina Fernández; Beatriz Galán; José L García; Eduardo Díaz; Baltasar Miñambres
Journal:  J Bacteriol       Date:  2004-08       Impact factor: 3.490

9.  Separation of penicillin G from phenylacetic acid in a supported liquid membrane system.

Authors:  C J Lee; H J Yeh; W Y Yang; C R Kan
Journal:  Biotechnol Bioeng       Date:  1994-02-20       Impact factor: 4.530

Review 10.  Chemostat-based micro-array analysis in baker's yeast.

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  8 in total

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Review 3.  Penicillium chrysogenum, a Vintage Model with a Cutting-Edge Profile in Biotechnology.

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4.  Comparative assessment of native and heterologous 2-oxo acid decarboxylases for application in isobutanol production by Saccharomyces cerevisiae.

Authors:  N Milne; A J A van Maris; J T Pronk; J M Daran
Journal:  Biotechnol Biofuels       Date:  2015-12-01       Impact factor: 6.040

Review 5.  Omics Approaches Applied to Penicillium chrysogenum and Penicillin Production: Revealing the Secrets of Improved Productivity.

Authors:  Carlos García-Estrada; Juan F Martín; Laura Cueto; Carlos Barreiro
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6.  Twists and Turns in the Salicylate Catabolism of Aspergillus terreus, Revealing New Roles of the 3-Hydroxyanthranilate Pathway.

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7.  Genomic characteristics and comparative genomics analysis of Penicillium chrysogenum KF-25.

Authors:  Qin Peng; Yihui Yuan; Meiying Gao; Xupeng Chen; Biao Liu; Pengming Liu; Yan Wu; Dandan Wu
Journal:  BMC Genomics       Date:  2014-02-21       Impact factor: 3.969

8.  Functional characterization of a Penicillium chrysogenum mutanase gene induced upon co-cultivation with Bacillus subtilis.

Authors:  Ishwar Bajaj; Tânia Veiga; Dino van Dissel; Jack T Pronk; Jean-Marc Daran
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  8 in total

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