Interaction between chemical mutagens with a delayed effect and metabolites of seeds : Communication 2: changes in

V V Shevchenko1, E M Protopopova, G A Grigoriyeva

  • 1Institute of Developmental Biology, USSR Academy of Science, Moscow, USSR.

Insights

Chemical mutagens like ethylenimine can create stronger secondary mutagens when interacting with plant seed metabolites, significantly increasing chromosome aberrations in Crepis capillaris seedlings.

Area of Science:

  • Plant genetics
  • Chemical mutagenesis
  • Molecular biology

Background:

  • Chemical mutagens induce chromosome aberrations.
  • Plant seed metabolites can modify mutagenic effects.

Purpose of the Study:

  • Investigate the interaction between ethylenimine and seed metabolites.
  • Determine the effect of these interactions on chromosome aberrations.
  • Identify factors influencing mutagenic enhancement.

Main Methods:

  • Treating Crepis capillaris seedlings with ethylenimine and various plant seed metabolites.
  • Analyzing induced chromosome aberrations.
  • Comparing the mutagenic effects of ethylenimine and its derivatives.

Main Results:

  • Compositae seed metabolites significantly enhanced ethylenimine's mutagenic effect (dozens of times).
  • Metabolites from other plant seeds showed a weaker enhancement (1.5-2.0 times).
  • Ethylenimine derivatives and other tested mutagens were not enhanced by Compositae metabolites; HN2 was inactivated.

Conclusions:

  • Plant seed metabolites, particularly from Compositae, can form highly active secondary mutagens with ethylenimine.
  • The "enhancement effect" is linked to substances in the seed fruit coating.
  • Chromosome aberrations result from both the mutagen and its reaction products with cellular metabolites.

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