Structure-activity relationships of trichothecene toxins in an Arabidopsis thaliana leaf assay

J Agric Food Chem. 2007 Aug 8;55(16):6487-92. doi: 10.1021/jf0709193. Epub 2007 Jul 14.

Abstract

Many Fusarium species produce trichothecenes, sesquiterpene epoxides that differ in patterns of oxygenation and esterification at carbon positions C-3, C-4, C-7, C-8, and C-15. For the first comprehensive and quantitative comparison of the effects of oxygenation and esterification on trichothecene phytotoxicity, we tested 24 precursors, intermediates, and end products of the trichothecene biosynthetic pathway in an Arabidopsis thaliana detached leaf assay. At 100 microM, the highest concentration tested, only the trichothecene precursor trichodiene was nontoxic. Among trichothecenes, toxicity varied more than 200-fold. Oxygenation at C-4, C-8, C-7/8, or C-15 was, on average, as likely to decrease as to increase toxicity. Esterification at C-4, C-8, or C-15 generally increased toxicity. Esterification at C-3 increased toxicity in one case and decreased toxicity in three of eight cases tested. Thus, the increase in structural complexity along the trichothecene biosynthetic pathway in Fusarium is not necessarily associated with an increase in phytotoxicity.

MeSH terms

  • Arabidopsis / drug effects*
  • Esterification
  • Hydroxylation
  • Plant Leaves / drug effects*
  • Structure-Activity Relationship
  • Trichothecenes / biosynthesis
  • Trichothecenes / chemistry*
  • Trichothecenes / toxicity*

Substances

  • Trichothecenes