Tri13 and Tri7 determine deoxynivalenol- and nivalenol-producing chemotypes of Gibberella zeae

被引:226
作者
Lee, T
Han, YK
Kim, KH
Yun, SH
Lee, YW [1 ]
机构
[1] Seoul Natl Univ, Sch Agr Biotechnol, Suwon 441744, South Korea
[2] Seoul Natl Univ, Res Ctr New Biomat Agr, Suwon 441744, South Korea
[3] Soonchunhyang Univ, Div Life Sci, Asan 336745, South Korea
关键词
D O I
10.1128/AEM.68.5.2148-2154.2002
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
Gibberella zeae, a major cause of cereal scab, can be divided into two chemotypes based on production of the 8-ketotrichothecenes deoxynivalenol (DON) and nivalenol (NIV). We cloned and sequenced a Tri13 homolog from each chemotype. The Tri13 from a NIV chemotype strain (88-1) is located in the trichothecene gene cluster and carries an open reading frame similar to that of Fusarium sporotrichioides, whereas the Tri13 from a DON chemotype strain (H-11) carries several mutations. To confirm the roles of the Tri13 and TK7 genes in trichothecene production by G. zeae, we genetically altered toxin production in 88-1 and H-11. In transgenic strains, the targeted deletion of Tri13 from the genome of 88-1 caused production of DON rather than NIV. Heterologous expression of the 88-1 Tri13 gene alone or in combination with the 88-1 Tri7 gene conferred on H-11 the ability to synthesize NIV; in the latter case, 4-acetylnivalenol (4-ANIV) also was produced. These results suggest that Tri13 and Tri7 are required for oxygenation and acetylation of the oxygen at C-4 during synthesis of NIV and 4-ANIV in G. zeae. These functional analyses of the Tri13 and Tri7 genes provide the first clear evidence for the genetic basis of the DON and NIV chemotypes in G. zeae.
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页码:2148 / 2154
页数:7
相关论文
共 45 条
  • [1] PRODUCTION OF TRICHOTHECENE AND NON-TRICHOTHECENE MYCOTOXINS BY FUSARIUM SPECIES ISOLATED FROM MAIZE IN MINNESOTA
    ABBAS, HK
    MIROCHA, CJ
    KOMMEDAHL, T
    VESONDER, RF
    GOLINSKI, P
    [J]. MYCOPATHOLOGIA, 1989, 108 (01) : 55 - 58
  • [2] Alexander CB, 1999, AM J CLIN PATHOL, V112, P131
  • [3] Alexander NJ, 1998, APPL ENVIRON MICROB, V64, P221
  • [4] ALTSCHUL SF, 1990, J MOL BIOL, V215, P403, DOI 10.1006/jmbi.1990.9999
  • [5] A genetic and biochemical approach to study trichothecene diversity in Fusarium sporotrichioides and Fusarium graminearum
    Brown, DW
    McCormick, SP
    Alexander, NJ
    Proctor, RH
    Desjardins, AE
    [J]. FUNGAL GENETICS AND BIOLOGY, 2001, 32 (02) : 121 - 133
  • [6] Cook R.J., 1981, Fusarium: Diseases, Biology, and Taxonomy, P39
  • [7] COOK RJ, 1968, PHYTOPATHOLOGY, V78, P1673
  • [8] NITRATE NON-UTILIZING MUTANTS OF FUSARIUM-OXYSPORUM AND THEIR USE IN VEGETATIVE COMPATIBILITY TESTS
    CORRELL, JC
    KLITTICH, CJR
    LESLIE, JF
    [J]. PHYTOPATHOLOGY, 1987, 77 (12) : 1640 - 1646
  • [9] Occurrence of Fusarium species and mycotoxins in nepalese maize and wheat and the effect of traditional processing methods on mycotoxin levels
    Desjardins, AE
    Manandhar, G
    Plattner, RD
    Maragos, CM
    Shrestha, K
    McCormick, SP
    [J]. JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY, 2000, 48 (04) : 1377 - 1383
  • [10] TRICHOTHECENE BIOSYNTHESIS IN FUSARIUM SPECIES - CHEMISTRY, GENETICS, AND SIGNIFICANCE
    DESJARDINS, AE
    HOHN, TM
    MCCORMICK, SP
    [J]. MICROBIOLOGICAL REVIEWS, 1993, 57 (03) : 595 - 604