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A gene (pks2) encoding a putative 6-methylsalicylic acid synthase from Glarea lozoyensis

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Abstract

A gene that encodes for a polyketide synthase (PKS) was cloned from the fungus Glarea lozoyensis and characterized. The gene (pks2) consists of four exons interrupted by three introns of 51, 59, and 65 bp, which are clustered at the 5′ end. Its predicted product is a 1791-amino-acid protein containing five catalytic motifs typical of fungal PKSs, including a β-ketosynthase, an acyltransferase, a dehydratase, a β-ketoacyl reductase, and an acyl carrier region. The gene is transcribed from an initiation site located 375 bp upstream of the translational start codon and extends to a transcriptional termination site 244 bp downstream of the translational stop codon. The gene function is not required for either vegetative growth of G. lozoyensis or for production of pneumocandin, as shown by Agrobacterium-mediated pks2 gene disruption. Previously reported cluster analysis of ketosynthase motifs from 37 fungal polyketide synthases had grouped the Pks2p from G. lozoyensis with PKSs involved in the biosynthesis of 6-methylsalicylic acid. To verify the function of the gene, it was transferred into Aspergillus nidulans under the control of the trpC promoter. 5′-and 3′-RACE experiments confirmed that it was transcribed in the heterologous host, and was associated with the synthesis of a compound identified as 6-methylsalicylic acid by NMR and mass spectrometry. In G. lozoyensis, pks2 is flanked by a gene that encodes a putative drug resistance efflux pump. The Aspergillus pks2 transformants, which were arginine prototrophs, also exhibited precocious pigmentation and accumulated a benzophenone that appeared to be a precursor of emericellin (variecoxanthone B), a known product of A. nidulans. The buildup of the benzophenone may be related to the use of an alternative splice site for the removal of intron 1 of the pks2 transcript in the heterologous host.

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References

  • Adefarati AA, Giacobbe RA, Hensens OD, Tkacz JS (1991) Biosynthesis of L-671, 329, an echinocandin-type antibiotic produced by Zalerion arboricola: origins of some of the unusual amino acids and the dimethylmyristic acid side chain. J Am Chem Soc 113:3542–3545

    Google Scholar 

  • Alexander NJ, McCormick SP, Hohn TM (1999) TRI12, a trichothecene effux pump from Fusarium sporotrichioides: gene isolation and expression in yeast. Mol Gen Genet 261:977–984

    Google Scholar 

  • Anke H, Kolthoum I, Zahner H, Laatsch H (1980) Metabolic products of microorganisms. 185. The anthraquinones of the Aspergillus glaucus group. I. Occurrence, isolation, identification and antimicrobial activity. Arch Microbiol 126:223–230

    Google Scholar 

  • Ballance DJ (1991) Transformation systems for filamentous fungi and an overview of fungal gene structure. In: Leong SA, Berka RM (eds) Molecular industrial mycology: systems and applications for filamentous fungi. Marcel Dekker, New York, pp 1–29

    Google Scholar 

  • Bardshiri E, Simpson TJ (1981) Biosynthesis of tajixanthone in Aspergillus variecolor; incorporation of [2 H3]acetate and [1,2−13 C2]acetate. J Chem Soc Chem Commun 195–196

  • Beck J, Ripka S, Siegner A, Schiltz E, Schweizer E (1990) The multifunctional 6-methylsalicyclic acid synthase gene of Penicillium patulum. Its gene structure relative to that of other polyketide synthases. Eur J Biochem 192:487–498

    Google Scholar 

  • Bedford DJ, Schweizer E, Hopwood DA, Khosla C (1995) Expression of a functional fungal polyketide synthase in the bacterium Streptomyces coelicolor A3(2). J Bacteriol 177:4544–4548

    Google Scholar 

  • Bills GF, Platas G, Pelaez, Masurekar P (1999) Reclassification of a pneumocandin-producing anamorph, Glarea lozoyensis gen. et sp. nov., previously identified as Zalerion arboricola. Mycol Res 103:179–192

    Google Scholar 

  • Brown MP, Brown-Jenco CS, Payne GA (1999) Genetic and molecular analysis of aflatoxin biosynthesis. Fungal Genet Biol 26:81–98

    Google Scholar 

  • Buckingham J (ed) (2000) Dictionary of natural products on CD-ROM. Chapman & Hall/CRC Press, Washington DC

    Google Scholar 

  • Calabrese D, Bille J, Sanglard D (2000) A novel multidrug efflux transporter gene of the major facilitator superfamily from Candida albicans (FLU1) conferring resistance to fluconazole. Microbiology 146:2743–2754

    CAS  PubMed  Google Scholar 

  • Chang P-K, Yu J, Yu J-H (2004) aflT, a MFS transporter-encoding gene located in the aflatoxin gene cluster, does not have a significant role in aflatoxin secretion. Fung Genet Biol 41:911–920

    Google Scholar 

  • Clutterbuck AJ (1974) Aspergillus nidulans. In: King RC (ed) Handbook of genetics, vol 1. Plenum, New York, pp 447–510

  • Dimroth P, Ringelmann E, Lynen F (1976) 6-Methylsalicylic acid synthetase from Penicillium patulum. Some catalytic proterties of the enzyme and its relation to fatty acid synthetase. Eur J Biochem 68:591–596

    Google Scholar 

  • Fujii I, Ebizuka Y, Sankawa U (1988) A novel anthraquinone ring cleavage enzyme from Aspergillus terreus. J Biochem (Tokyo) 103:878–883

    Google Scholar 

  • Fujii I, Ono Y, Tada H, Gomi K, Ebizuka Y, Sankawa U (1996) Cloning of the polyketide syntase gene atX from Aspergillus terreus and its identification as the 6-methylsalicylic acid synthase gene by heterologous expression. Mol Gen Genet 253:1–10

    Google Scholar 

  • Fujii I, Watanabe A, Ebizuka Y (2004) More functions for multifunctional polyketide synthases. In: Tkacz JS, Lange L (eds) Advances in fungal biotechnology for industry, agriculture, and medicine. Kluwer Academic/Plenum Publishers, New York, pp 97–125

    Google Scholar 

  • Fulton TR, Ibrahim N, Losada MC, Grzegorski D, Tkacz JS (1999) A melanin polyketide synthase (PKS) gene from Nodulisporium sp. that shows homology to the pks1 gene of Colletotrichum lagenarium. Mol Gen Genet 262:714–720

    Google Scholar 

  • Ishida M, Hamasaki T, Hatsuda Y (1975a) The structure of two metabolites, emerin and emericellin, from Aspergillus nidulans. Agric Biol Chem 39:2181–2184

    Google Scholar 

  • Ishida M, Hamasaki T, Hatsuda Y, Fukuyama K, Tsukihara T, Katsube Y (1975b) Emericellin, a new metabolite from Aspergillus nidulans. Agr Biol Chem 39:291–292

    Google Scholar 

  • Kealey JT, Liu L, Santi DV, Betlach MC, Barr PJ (1998) Production of a polyketide natural product in nonpolyketide producing prokaryotic and eukaryotic hosts. Proc Natl Acad Sci USA 95:505–509

    Google Scholar 

  • Radford A, Parish JH (1997) The genome and genes of Neurospora crassa. Fungal Genet Biol 21:258–266

    Google Scholar 

  • Richardson MT, Pohl NL, Kealey JT, Khosla C (1999) Tolerance and specificity of recombinant 6-methylsalicyclic acid synthase. Metab Eng 1:180–187

    Google Scholar 

  • Sauer M, Lu P, Sangari R, Kennedy S, Polishook J, Bills G, An Z (2002) Estimating polyketide metabolic potential among non-sporulating fungal endophytes of Vaccinium macrocarpon. Mycol Res 106:460–470

    Google Scholar 

  • Spencer JB, Jordan PM (1992) Purification and properties of 6-methylsalicylic acid synthase from Penicillium patulum. Biochem J 288:839–846

    Google Scholar 

  • Tkacz JS, DiDomenico B (2001) Antifungals: what’s in the pipeline. Curr Opin Microbiol 4:540–545

    Google Scholar 

  • Tkacz JS, Giacobbe RA, Monaghan RL (1993) Improvement in the titer of echinocandin-type antibiotics: a magnesium-limiting medium supporting the biphasic production of pneumocandins A0 and B0. J Ind Microbiol 11:95–103

    Google Scholar 

  • Tkacz JS, Dahl-Roshak AM, Ibrahim N, Paress PS (2005) Agrobacterium-mediated transformation of filamentous fungi. In: An Z (ed) Handbook of industrial mycology. Marcel Dekker, New York, pp 105–122

    Google Scholar 

  • Turner WB, Aldridge DC (1983) Fungal metabolites II. Academic Press, London

    Google Scholar 

  • Venkatasubbaiah P, Chilton WS (1992) An epoxydon-derived ester from a Phoma sp. pathogenic to rhubarb. J Nat Prod 55:639–643

    Google Scholar 

  • Vogel G, Lynen F (1975) 6-Methylsalicylic acid synthetase. Methods Enzymol 43:520–530

    Google Scholar 

  • Ward TJ, Bielawski JP, Kistler HC, Sullivan E, O’Donnell K (2002) Ancestral polymorphism and adaptive evolution in the trichothecene mycotoxin gene cluster of phytopathogenic Fusarium. Proc Natl Acad Sci USA 99:9278–8283

    Google Scholar 

  • Yalpani N, Altier DJ, Barbour E, Cigan AL, Scelonge CJ (2001) Production of 6-methylsalicylic acid by expression of a fungal polyketide synthase activates disease resistance in tobacco. Plant Cell 13:1401–1409

    Google Scholar 

  • Yelton MM, Hamer JE, Timberlake WE (1984) Transformation of Aspergillus nidulans by using a trpC plasmid. Proc Natl Acad Sci USA 81:1470–1474

    Google Scholar 

  • Zhang A, Lu P, Dahl-Roshak AM, Paress PS, Kennedy S, Tkacz JS, An Z (2003) Efficient disruption of a polyketide synthase gene (pks1) required for melanin synthesis through Agrobacterium-mediated transformation of Glarea lozoyensis. Mol Gen Genomics 268:645–655

    Google Scholar 

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Acknowledgements

We thank Deborah L. Zink for conducting the LC-MS analysis of Glaria lozoyensis extracts

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Correspondence to Z. An.

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Communicated by P.J. Punt

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Lu, P., Zhang, A., Dennis, L.M. et al. A gene (pks2) encoding a putative 6-methylsalicylic acid synthase from Glarea lozoyensis. Mol Genet Genomics 273, 207–216 (2005). https://doi.org/10.1007/s00438-005-1132-y

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