Effects of Hydrogen Peroxide on Different Toxigenic and Atoxigenic Isolates of Aspergillus flavus

被引:34
作者
Fountain, Jake C. [1 ,2 ]
Scully, Brian T. [3 ]
Chen, Zhi-Yuan [4 ]
Gold, Scott E. [5 ]
Glenn, Anthony E. [5 ]
Abbas, Hamed K. [6 ]
Lee, R. Dewey [7 ]
Kemerait, Robert C. [1 ]
Guo, Baozhu [2 ]
机构
[1] Univ Georgia, Dept Plant Pathol, Tifton, GA 31793 USA
[2] USDA ARS, Crop Protect & Management Res Unit, Tifton, GA 31793 USA
[3] USDA ARS, US Hort Res Lab, Ft Pierce, FL 34945 USA
[4] Louisiana State Univ, Dept Plant Pathol & Crop Physiol, Baton Rouge, LA 70803 USA
[5] USDA ARS, Toxicol & Mycotoxin Res Unit, Athens, GA 30605 USA
[6] USDA ARS, Biol Control Pests Res Unit, Stoneville, MS 38776 USA
[7] Univ Georgia, Dept Crop & Soil Sci, Tifton, GA 31793 USA
关键词
AFLATOXIN CONTAMINATION; OXIDATIVE STRESS; BIOSYNTHESIS; BIOCONTROL; IDENTIFICATION; PARASITICUS; RESISTANCE; DROUGHT; DEFENSE; STRAIN;
D O I
10.3390/toxins7082985
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Drought stress in the field has been shown to exacerbate aflatoxin contamination of maize and peanut. Drought and heat stress also produce reactive oxygen species (ROS) in plant tissues. Given the potential correlation between ROS and exacerbated aflatoxin production under drought and heat stress, the objectives of this study were to examine the effects of hydrogen peroxide (H2O2)-induced oxidative stress on the growth of different toxigenic (+) and atoxigenic (-) isolates of Aspergillus flavus and to test whether aflatoxin production affects the H2O2 concentrations that the isolates could survive. Ten isolates were tested: NRRL3357 (+), A9 (+), AF13 (+), Tox4 (+), A1 (-), K49 (-), K54A (-), AF36 (-), and Aflaguard (-); and one A. parasiticus isolate, NRRL2999 (+). These isolates were cultured under a H2O2 gradient ranging from 0 to 50 mM in two different media, aflatoxin-conducive yeast extract-sucrose (YES) and non-conducive yeast extract-peptone (YEP). Fungal growth was inhibited at a high H2O2 concentration, but specific isolates grew well at different H2O2 concentrations. Generally the toxigenic isolates tolerated higher concentrations than did atoxigenic isolates. Increasing H2O2 concentrations in the media resulted in elevated aflatoxin production in toxigenic isolates. In YEP media, the higher concentration of peptone (15%) partially inactivated the H2O2 in the media. In the 1% peptone media, YEP did not affect the H2O2 concentrations that the isolates could survive in comparison with YES media, without aflatoxin production. It is interesting to note that the commercial biocontrol isolates, AF36 (-), and Aflaguard (-), survived at higher levels of stress than other atoxigenic isolates, suggesting that this testing method could potentially be of use in the selection of biocontrol isolates. Further studies will be needed to investigate the mechanisms behind the variability among isolates with regard to their degree of oxidative stress tolerance and the role of aflatoxin production.
引用
收藏
页码:2985 / 2999
页数:15
相关论文
共 37 条
[1]   REGULATION OF AFLATOXIN BIOSYNTHESIS - INDUCTION OF AFLATOXIN PRODUCTION BY VARIOUS CARBOHYDRATES [J].
ABDOLLAHI, A ;
BUCHANAN, RL .
JOURNAL OF FOOD SCIENCE, 1981, 46 (02) :633-635
[2]   Aspergillus flavus [J].
Amaike, Saori ;
Keller, Nancy P. .
ANNUAL REVIEW OF PHYTOPATHOLOGY, VOL 49, 2011, 49 :107-133
[3]   Evaluation of atoxigenic isolates of Aspergillus flavus as potential biocontrol agents for aflatoxin in maize [J].
Atehnkeng, J. ;
Ojiambo, P. S. ;
Ikotun, T. ;
Sikora, R. A. ;
Cotty, P. J. ;
Bandyopadhyay, R. .
FOOD ADDITIVES AND CONTAMINANTS PART A-CHEMISTRY ANALYSIS CONTROL EXPOSURE & RISK ASSESSMENT, 2008, 25 (10) :1264-1271
[4]   Field efficacy of a mixture of atoxigenic Aspergillus flavus Link: Fr vegetative compatibility groups in preventing aflatoxin contamination in maize (Zea mays L.) [J].
Atehnkeng, J. ;
Ojiambo, P. S. ;
Cotty, P. J. ;
Bandyopadhyay, R. .
BIOLOGICAL CONTROL, 2014, 72 :62-70
[5]   Case-control study of an acute aflatoxicosis outbreak, Kenya, 2004 [J].
Azziz-Baumgartner, E ;
Lindblade, K ;
Gieseker, K ;
Rogers, HS ;
Kieszak, S ;
Njapau, H ;
Schleicher, R ;
McCoy, LF ;
Misore, A ;
DeCock, K ;
Rubin, C ;
Slutsker, L .
ENVIRONMENTAL HEALTH PERSPECTIVES, 2005, 113 (12) :1779-1783
[6]   Identification of genetic defects in the atoxigenic biocontrol strain Aspergillus flavus K49 reveals the presence of a competitive recombinant group in field populations [J].
Chang, Perng-Kuang ;
Abbas, Hamed K. ;
Weaver, Mark A. ;
Ehrlich, Kenneth C. ;
Scharfenstein, Leslie L. ;
Cotty, Peter J. .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2012, 154 (03) :192-196
[7]   Loss of msnA, a Putative Stress Regulatory Gene, in Aspergillus parasiticus and Aspergillus flavus Increased Production of Conidia, Aflatoxins and Kojic Acid [J].
Chang, Perng-Kuang ;
Scharfenstein, Leslie L. ;
Luo, Meng ;
Mahoney, Noreen ;
Molyneux, Russell J. ;
Yu, Jiujiang ;
Brown, Robert L. ;
Campbell, Bruce C. .
TOXINS, 2011, 3 (01) :82-104
[8]   PRODUCTION OF AFLATOXINS B1 AND G1 BY ASPERGILLUS FLAVUS IN A SEMISYNTHETIC MEDIUM [J].
DAVIS, ND ;
DIENER, UL ;
ELDRIDGE, DW .
APPLIED MICROBIOLOGY, 1966, 14 (03) :378-&
[9]   Laboratory tests for assessing efficacy of atoxigenic Aspergillus flavus strains as biocontrol agents [J].
Degola, Francesca ;
Berni, Elettra ;
Restivo, Francesco M. .
INTERNATIONAL JOURNAL OF FOOD MICROBIOLOGY, 2011, 146 (03) :235-243
[10]   Harpin and hydrogen peroxide both initiate programmed cell death but have differential effects on defence gene expression in Arabidopsis suspension cultures [J].
Desikan, R ;
Reynolds, A ;
Hancock, JT ;
Neill, SJ .
BIOCHEMICAL JOURNAL, 1998, 330 :115-120