Cell cycle studies on the mode of action of yeast K28 killer toxin

M J Schmitt1, P Klavehn, J Wang

  • 1Institut für Mikrobiologie und Weinforschung, Johannes Gutenberg-Universität Mainz, Germany.

Insights

The K28 killer toxin from Saccharomyces cerevisiae halts DNA synthesis and cell division. Yeast cells protected at START, before DNA replication, resist the toxin, indicating cell cycle stage is crucial for sensitivity.

Area of Science:

  • Molecular and Cellular Biology
  • Yeast Genetics
  • Cell Cycle Regulation

Background:

  • The K28 killer toxin, encoded by a virus in Saccharomyces cerevisiae, is known to kill sensitive yeast cells.
  • The precise mechanism and cell cycle dependency of K28 toxin-induced cell death remain incompletely understood.

Purpose of the Study:

  • To elucidate the mechanism of K28 killer toxin action in Saccharomyces cerevisiae.
  • To determine the role of cell cycle progression in yeast sensitivity to K28 toxin.

Main Methods:

  • Utilized cell cycle arrest methods including alpha-factor (START), hydroxyurea (G1/S), and methylbenzimidazol-2yl-carbamate (G2/M).
  • Assessed cell viability and DNA synthesis inhibition following K28 toxin exposure in synchronized yeast populations.
  • Observed cell morphology and nuclear content to determine cell cycle arrest points.

Main Results:

  • K28 toxin rapidly inhibits DNA synthesis and causes cell cycle arrest in S phase with medium-sized buds.
  • Yeast cells arrested at START by alpha-factor are protected from K28 toxin, while G2/M arrested cells are not.
  • Toxin exposure leads to blockage of both DNA synthesis and the budding cycle, suggesting a common regulatory step.

Conclusions:

  • K28 killer toxin requires entry into nuclear division and budding cycles for its lethal effect.
  • Sensitivity to K28 toxin is dependent on the cell cycle stage, with protection conferred by arrest prior to DNA replication.
  • The toxin likely inhibits a critical, conserved step essential for both DNA synthesis and morphogenesis.