Osmotic-Adaptation Response of sakA/hogA Gene to Aflatoxin Biosynthesis, Morphology Development and Pathogenicity in Aspergillus flavus

被引:25
|
作者
Tumukunde, Elisabeth [1 ,2 ]
Li, Ding [1 ,2 ]
Qin, Ling [1 ,2 ]
Li, Yu [1 ,2 ]
Shen, Jiaojiao [1 ,2 ]
Wang, Shihua [1 ]
Yuan, Jun [1 ]
机构
[1] Fujian Agr & Forestry Univ, Key Lab Pathogen Fungi & Mycotoxins Fujian Prov, Key Lab Biopesticide & Chem Biol, Minist Educ, Fuzhou 350002, Fujian, Peoples R China
[2] Fujian Agr & Forestry Univ, Sch Life Sci, Fuzhou 350002, Fujian, Peoples R China
基金
中国国家自然科学基金;
关键词
osmotic stress; aflatoxin; AfsakA; Aspergillus flavus; MAPK; ACTIVATED PROTEIN-KINASE; SACCHAROMYCES-CEREVISIAE; SCLEROTIAL PRODUCTION; REGULATES DEVELOPMENT; SECONDARY METABOLISM; SIGNAL-TRANSDUCTION; SEXUAL DEVELOPMENT; STRESS; GROWTH; NIDULANS;
D O I
10.3390/toxins11010041
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Aspergillus flavus is one of the fungi from the big family of Aspergillus genus and it is capable of colonizing a large number of seed/crops and living organisms such as animals and human beings. SakA (also called hogA/hog1) is an integral part of the mitogen activated protein kinase signal of the high osmolarity glycerol pathway. In this study, the AfsakA gene was deleted (AfsakA) then complemented (AfsakA::AfsakA) using homologous recombination and the osmotic stress was induced by 1.2 mol/L D-sorbital and 1.2 mol/L sodium chloride. The result showed that AfsakA mutant caused a significant influence on conidial formation compared to wild-type and AfsakA::AfsakA strains. It was also found that AfsakA responds to both the osmotic stress and the cell wall stress. In the absence of osmotic stress, AfsakA mutant produced more sclerotia in contrast to other strains, whereas all strains failed to generate sclerotia under osmotic stress. Furthermore, the deletion of AfsakA resulted in the increase of Aflatoxin B-1 production compared to other strains. The virulence assay on both maize kernel and peanut seeds showed that AfsakA strain drastically produced more conidia and Aflatoxin B-1 than wild-type and complementary strains. AfSakA-mCherry was located to the cytoplasm in the absence of osmotic stress, while it translocated to the nucleus upon exposure to the osmotic stimuli. This study provides new insights on the development and evaluation of aflatoxin biosynthesis and also provides better understanding on how to prevent Aspergillus infections which would be considered the first step towards the prevention of the seeds damages caused by A. flavus.
引用
收藏
页数:20
相关论文
共 50 条
  • [21] AflSte20 Regulates Morphogenesis, Stress Response, and Aflatoxin Biosynthesis of Aspergillus flavus
    Li, Ding
    Qin, Ling
    Wang, Yinchun
    Xie, Qingchen
    Li, Na
    Wang, Shihua
    Yuan, Jun
    TOXINS, 2019, 11 (12)
  • [22] The high-affinity phosphodiesterase PdeH regulates development and aflatoxin biosynthesis in Aspergillus flavus
    Yang, Kunlong
    Liu, Yinghang
    Liang, Linlin
    Li, Zhenguo
    Qin, Qiuping
    Nie, Xinyi
    Wang, Shihua
    FUNGAL GENETICS AND BIOLOGY, 2017, 101 : 7 - 19
  • [23] The membrane mucin Msb2 regulates aflatoxin biosynthesis and pathogenicity in fungus Aspergillus flavus
    Qin, Ling
    Li, Ding
    Zhao, Jiaru
    Yang, Guang
    Wang, Yinchun
    Yang, Kunlong
    Tumukunde, Elisabeth
    Wang, Shihua
    Yuan, Jun
    MICROBIAL BIOTECHNOLOGY, 2021, 14 (02): : 628 - 642
  • [24] Histone 2-Hydroxyisobutyryltransferase Encoded by Afngg1 Is Involved in Pathogenicity and Aflatoxin Biosynthesis in Aspergillus flavus
    Wang, Jing
    Liang, Liuke
    Wei, Shan
    Zhang, Shuaibing
    Hu, Yuansen
    Lv, Yangyong
    TOXINS, 2023, 15 (01)
  • [25] G Protein α Subunit GpaB is Required for Asexual Development, Aflatoxin Biosynthesis and Pathogenicity by Regulating cAMP Signaling in Aspergillus flavus
    Liu, Yinghang
    Yang, Kunlong
    Qin, Qiuping
    Lin, Guinan
    Hu, Tianran
    Xu, Zhangling
    Wang, Shihua
    TOXINS, 2018, 10 (03):
  • [26] Gene profiling for studying the mechanism of aflatoxin biosynthesis in Aspergillus flavus and A-parasiticus
    Yuy, Jiujiang
    Ronningy, Catherine M.
    Wilkinsony, Jeffery R.
    Campbell, Bruce C.
    Payne, Gary A.
    Bhatnagar, Deepak
    Cleveland, Thomas E.
    Nierman, William C.
    FOOD ADDITIVES AND CONTAMINANTS PART A-CHEMISTRY ANALYSIS CONTROL EXPOSURE & RISK ASSESSMENT, 2007, 24 (10): : 1035 - 1042
  • [27] Transcriptomic Insights into Benzenamine Effects on the Development, Aflatoxin Biosynthesis, and Virulence of Aspergillus flavus
    Yang, Mingguan
    Lu, Laifeng
    Li, Shuhua
    Zhang, Jing
    Li, Zhenjing
    Wu, Shufen
    Guo, Qingbin
    Liu, Huanhuan
    Wang, Changlu
    TOXINS, 2019, 11 (02)
  • [28] Regulation of Morphology, Aflatoxin Production, and Virulence of Aspergillus flavus by the Major Nitrogen Regulatory Gene areA
    Fasoyin, Opemipo Esther
    Yang, Kunlong
    Qiu, Mengguang
    Wang, Bin
    Wang, Sen
    Wang, Shihua
    TOXINS, 2019, 11 (12)
  • [29] SntB triggers the antioxidant pathways to regulate development and aflatoxin biosynthesis in Aspergillus flavus
    Wu, Dandan
    Yang, Chi
    Yao, Yanfang
    Ma, Dongmei
    Lin, Hong
    Hao, Ling
    Xin, Wenwen
    Ye, Kangfu
    Sun, Minghui
    Hu, Yule
    Yang, Yanling
    Zhuang, Zhenhong
    ELIFE, 2024, 13
  • [30] Chitin Deacetylase Homologous Gene cda Contributes to Development and Aflatoxin Synthesis in Aspergillus flavus
    Zhang, Xin
    Wen, Meifang
    Li, Guoqi
    Wang, Shihua
    TOXINS, 2024, 16 (05)