Identification and in vivo functional analysis by gene disruption of ctnA, an activator gene involved in citrinin biosynthesis in Monascus purpureus

被引:97
作者
Shimizu, Takeo
Kinoshita, Hiroshi
Nihira, Takuya
机构
[1] Osaka Univ, Int Ctr Biotechnol, Suita, Osaka 5650871, Japan
[2] Mahidol Univ, Fac Sci, MU OU Collaborat Res Ctr Biosci & Biotechnol, Bangkok 10400, Thailand
关键词
ASPERGILLUS-PARASITICUS; AFLATOXIN BIOSYNTHESIS; PENICILLIUM-CITRINUM; REGULATORY GENE; BINDING; PROTEIN; RESISTANCE; EVOLUTION; PATHWAY; FUNGI;
D O I
10.1128/AEM.01979-06
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Citrinin, a secondary fungal metabolite of polyketide origin, is moderately nephrotoxic to vertebrates, including humans. From the red-pigment producer Monascus purpureus, a 21-kbp region flanking pksCT, which encodes citrinin polyketide synthase, was cloned. Four open reading frames (ORFs) (orf1, orf2, orf3, and orf4) in the 5'-flanking region and one ORF (orf5) in the 3'-flanking region were identified in the vicinity of pksCT. orf1 to or orf5 encode a homolog of a dehydrogenase (similarity, 46%), a regulator (similarity, 38%), an oxygenase (similarity, 41%, an oxidoreductase (similarity, 26%, and a transporter (similarity, 58%), respectively. orf2 (2,006 bp with four introns) encodes a 576-amino-acid protein containing a typical Zn(II)2Cys6 DNA binding motif at the N terminus and was designated ctnA. Although reverse transcriptase PCR analysis revealed that all of these ORFs, except for orf1, were transcribed with pksCT under citrinin production conditions, the disruption of ctnA caused large decreases in the transcription of pksCT and orf5, together with reduction of citrinin production to barely detectable levels, suggesting that these two genes are under control of the ctnA product. Complementation of the ctnA disruptant with intact ctnA on an autonomously replicating plasmid restored both transcription and citrinin production, indicating that CtnA is a major activator of citrinin biosynthesis.
引用
收藏
页码:5097 / 5103
页数:7
相关论文
共 22 条
[11]   Medium-chain fatty acids affect citrinin production in the filamentous fungus Monascus ruber [J].
Hajjaj, H ;
Klaébé, A ;
Goma, G ;
Blanc, PJ ;
Barbier, E ;
François, J .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2000, 66 (03) :1120-1125
[12]   On the production and chemical constitution of a new yellow colouring matter, citrinin, produced from glucose by Penicillium citrinum Thom [J].
Hetherington, AC ;
Raistrick, H .
PHILOSOPHICAL TRANSACTIONS OF THE ROYAL SOCIETY OF LONDON SERIES B-CONTAINING PAPERS OF A BIOLOGICAL CHARACTER, 1931, 220 :269-295
[13]   Modulation of polyketide synthase activity by accessory proteins during lovastatin biosynthesis [J].
Kennedy, J ;
Auclair, K ;
Kendrew, SG ;
Park, C ;
Vederas, JC ;
Hutchinson, CR .
SCIENCE, 1999, 284 (5418) :1368-1372
[14]   A binuclear zinc transcription factor binds the host isoflavonoid-responsive element in a fungal cytochrome p450 gene responsible for detoxification [J].
Khan, R ;
Tan, R ;
Mariscal, AG ;
Straney, D .
MOLECULAR MICROBIOLOGY, 2003, 49 (01) :117-130
[15]  
Manabe M., 2001, Mycotoxins, V51, P25, DOI 10.2520/myco.51.25
[16]   Mutagenicity of commercial Monascus fermentation products and the role of citrinin contamination [J].
Sabater-Vilar, M ;
Maas, RFM ;
Fink-Gremmels, J .
MUTATION RESEARCH-GENETIC TOXICOLOGY AND ENVIRONMENTAL MUTAGENESIS, 1999, 444 (01) :7-16
[17]  
Sambrook J., 1989, Molecular Cloning: a Laboratory Manual
[18]   Development of transformation system in Monascus purpureus using an autonomous replication vector with aureobasidin a resistance gene [J].
Shimizu, T ;
Kinoshita, H ;
Nihira, T .
BIOTECHNOLOGY LETTERS, 2006, 28 (02) :115-120
[19]   Polyketide synthase gene responsible for citrinin biosynthesis in Monascus purpureus [J].
Shimizu, T ;
Kinoshita, H ;
Ishihara, S ;
Sakai, K ;
Nagai, S ;
Nihira, T .
APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 2005, 71 (07) :3453-3457
[20]  
Staben C., 1989, Fungal Genet. Rep., V36, P79