Identification of genetic defects in the atoxigenic biocontrol strain Aspergillus flavus K49 reveals the presence of a competitive recombinant group in field populations

被引:48
作者
Chang, Perng-Kuang [1 ]
Abbas, Hamed K. [2 ]
Weaver, Mark A. [2 ]
Ehrlich, Kenneth C. [1 ]
Scharfenstein, Leslie L. [1 ]
Cotty, Peter J. [1 ]
机构
[1] ARS, So Reg Res Ctr, USDA, New Orleans, LA 70124 USA
[2] ARS, Biol Control Pests Res Unit, USDA, Stoneville, MS 38776 USA
关键词
Aspergillus flavus; Aflatoxin; Biocontrol; Cyclopiazonic acid; Gene cluster; VEGETATIVE COMPATIBILITY GROUPS; AFLATOXIN BIOSYNTHESIS; CLUSTER; CONTAMINATION;
D O I
10.1016/j.ijfoodmicro.2012.01.005
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Contamination of corn, cotton, peanuts and tree nuts by aflatoxins is a severe economic burden for growers. A current biocontrol strategy is to use non-aflatoxigenic Aspergillus flavus strains to competitively exclude field toxigenic Aspergillus species. A. flavus K49 does not produce aflatoxins and cyclopiazonic acid (CPA) and is currently being tested in corn-growing fields in Mississippi. We found that its lack of production of aflatoxins and CPA resulted from single nucleotide mutations in the polyketide synthase gene and hybrid polyketide-nonribosomal peptide synthase gene, respectively. Furthermore, based on single nucleotide polymorphisms of the aflatoxin biosynthesis omtA gene and the CPA biosynthesis dmaT gene, we conclude that K49, AF36 and previously characterized TX9-8 form a biocontrol group. These isolates appear to be derived from recombinants of typical large and small sclerotial morphotype strains. This finding provides an easy way to select future biocontrol strains from the reservoir of non-aflatoxigenic populations in agricultural fields. Published by Elsevier B.V.
引用
收藏
页码:192 / 196
页数:5
相关论文
共 35 条
[1]   Comparison of major biocontrol strains of non-aflatoxigenic Aspergillus flavus for the reduction of aflatoxins and cyclopiazonic acid in maize [J].
Abbas, H. K. ;
Zablotowicz, R. M. ;
Horn, B. W. ;
Phillips, N. A. ;
Johnson, B. J. ;
Jin, X. ;
Abel, C. A. .
FOOD ADDITIVES AND CONTAMINANTS PART A-CHEMISTRY ANALYSIS CONTROL EXPOSURE & RISK ASSESSMENT, 2011, 28 (02) :198-208
[2]   Biocontrol of aflatoxin in corn by inoculation with non-aflatoxigenic Aspergillus flavus isolates [J].
Abbas, Hamed K. ;
Zablotowicz, Robert M. ;
Bruns, H. Arnold ;
Abel, Craig A. .
BIOCONTROL SCIENCE AND TECHNOLOGY, 2006, 16 (05) :437-449
[3]  
Accinelli C, 2008, CAN J MICROBIOL, V54, P371, DOI [10.1139/W08-018, 10.1139/w08-018]
[4]   Genetic diversity within Aspergillus flavus strains isolated from peanut-cropped soils in Argentina [J].
Barros, GG ;
Torres, AM ;
Rodriguez, MI ;
Chulze, SN .
SOIL BIOLOGY & BIOCHEMISTRY, 2006, 38 (01) :145-152
[5]   Nonaflatoxigenic Aspergillus flavus TX9-8 competitively prevents aflatoxin accumulation by A. flavus isolates of large and small sclerotial morphotypes [J].
Chang, Perng-Kuang ;
Hua, Sui-Sheng T. .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2007, 114 (03) :275-279
[6]   Clustered genes involved in cyclopiazonic acid production are next to the aflatoxin biosynthesis gene cluster in Aspergillus flavus [J].
Chang, Perng-Kuang ;
Horn, Bruce W. ;
Dorner, Joe W. .
FUNGAL GENETICS AND BIOLOGY, 2009, 46 (02) :176-182
[7]   Cladal relatedness among Aspergillus oryzae isolates and Aspergillus flavus S and L morphotype isolates [J].
Chang, PK ;
Ehrlich, KC ;
Hua, SST .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2006, 108 (02) :172-177
[8]   Sequence breakpoints in the aflatoxin biosynthesis gene cluster and flanking regions in nonaflatoxigenic Aspergillus flavus isolates [J].
Chang, PK ;
Horn, BW ;
Dorner, JW .
FUNGAL GENETICS AND BIOLOGY, 2005, 42 (11) :914-923
[9]   Repressor-AFLR interaction modulates aflatoxin biosynthesis in Aspergillus parasiticus [J].
Chang, PK ;
Yu, JJ ;
Bhatnagar, D ;
Cleveland, TE .
MYCOPATHOLOGIA, 1999, 147 (02) :105-112
[10]  
Cotty PJ, 2007, BIOLOGICAL CONTROL: A GLOBAL PERSPECTIVE, P241, DOI 10.1079/9781845932657.0241