Caspase-mediated specific cleavage of BubR1 is a determinant of mitotic progression

Mijin Kim1, Katie Murphy, Fang Liu

  • 1Department of Radiation Oncology, University of Pennsylvania School of Medicine, John Morgan Bldg. 180 H, 3620 Hamilton Walk, Philadelphia, PA 19104, USA.

Insights

Spindle-disrupting agents trigger caspase activation, leading to BubR1 protein cleavage and mitotic checkpoint failure. Inhibiting caspases prolongs mitosis by preventing BubR1 degradation, revealing a conserved mechanism for cell cycle regulation.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Genetics

Background:

  • Cell cycle checkpoints ensure accurate chromosome duplication during mitosis.
  • Microtubule-targeting agents like paclitaxel induce cell cycle delays via mitotic checkpoint proteins, such as BubR1.
  • Regulation of checkpoint protein stability is crucial for determining the duration of cell cycle arrest.

Purpose of the Study:

  • To investigate the role of caspase activation in the regulation of BubR1 stability during mitotic arrest.
  • To identify the specific caspase cleavage sites on BubR1 and assess their functional significance.
  • To explore the evolutionary conservation of this regulatory mechanism.

Main Methods:

  • Treatment of HeLa cells with spindle-disrupting agents (nocodazole, paclitaxel).
  • Analysis of caspase activation and BubR1 cleavage.
  • Site-directed mutagenesis to identify and alter caspase cleavage sites on BubR1.
  • Expression of wild-type and mutant BubR1 in transfected cells and engineered clones.
  • Assessment of mitotic delay and aneuploidy.

Main Results:

  • Spindle disruption induced caspase activation and subsequent cleavage of BubR1.
  • Inhibition of caspases prevented BubR1 degradation and prolonged mitosis.
  • Two specific caspase cleavage sites (Asp607/Asp610 and Asp576/Asp579) were identified on BubR1.
  • Mutating these sites rendered BubR1 resistant to paclitaxel-induced degradation.
  • Expression of a cleavage-resistant BubR1 mutant enhanced mitotic delay and increased aneuploidy.
  • Conserved caspase cleavage motifs were found in BubR1 across multiple species.

Conclusions:

  • BubR1 stability is regulated by caspase-mediated cleavage during mitotic arrest.
  • This caspase-dependent degradation of BubR1 is a key mechanism for abrogating the mitotic checkpoint.
  • The identified caspase cleavage sites and their conserved nature highlight an evolutionarily conserved pathway for controlling cell cycle progression and potentially eliminating defective cells.

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